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Nettkurs 75 minutter 6 000 kr
Den nye PRINCE2® 7 er her! Beste praksis er gjort enda bedre. Foundation Level-sertifiseringen introduserer PRINCE2®-metoden og tar sikte på å bekrefte at du kjenner og f... [+]
Eksamen er på engelsk. Eksamensformen er multiple choice 60 spørsmål skal besvares, og du består ved 55% korrekte svar (dvs 33 av 60 spørsmål). Deltakerne har 1 time til rådighet på eksamen.  Ingen hjelpemidler er tillatt.   ITIL®/PRINCE2®/MSP®/MoP® are registered trademarks of AXELOS Limited, used under permission of AXELOS Limited. All rights reserved. [-]
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Virtuelt klasserom 150 minutter 7 990 kr
01 Sep
27 Nov
Bli med oss for å løse opp knuter og finne veien videre i casen konflikter og rolleutfordringer i styrereommet! [+]
Case kveld Del 1: Geronimo Management AS   Deltakelse på denne CASE-kvelden er inkludert i prisen for alle som er med i styrenettverksgrupper arrangert av Styreforeningen. For andre deltakere som er medlemmer av Styreforeningen koster seminaret kr. 4.990,-.For deltakere som ikke er med i styrenettverksgrupper og som ikke er medlemmer av Styreforeningen er prisen kr. 5.990,-   Overskriften for kvelden er: Konflikter og rolleutfordringer i styrerommet   Denne kvelden beveger vi oss inn i kulissene for selskapet: Gerinomo Management AS som er et SMB selskap, opprinnelig grundet og eiet av 2 tidligere kamerater: Halvor og Jonas. De to har hatt 30 års fartstid sammen i og med oppbyggingen av selskapet. I løpet av kort tid oppstår to situasjoner: Halvor får akutt hjerteproblemer på vei hjem fra arbeid og dør kort tid etter. Det kommer videre frem at Jonas sin tilstand de siste månedene har vært holdt skjult, men det blir nå klart at han har hurtig eskalerende demens og ikke er istand til å ta vare på seg selv eller selskapet. Vedtektene og aksjonæravtalen har noen bestemmelser om situasjoner som her oppstår, men er ikke dekkende nå som begge eiere er «ute av bildet». Neste generasjon på begge sider ønsker å «rykke inn» for å overta den veldrevne virksomheten. Et styre må på plass og håndtere både utfordringer og muligheter som står foran selskapet. Her må vi inn å analysere: hva som skjer, hva som burde gjøres, hvordan vi kan gå frem for å håndtere ulike situasjoner etc?   Bli med oss for å løse opp knuter og finne veien videre!   [-]
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Nettstudie 12 måneder 5 000 kr
Learn to maximise the number of successful service and product changes by ensuring that risks have been accurately assessed, authorising changes, and managing change sche... [+]
Understand the purpose and key concepts of Change Enablement, highlighting its importance in managing changes effectively to minimise risk and ensure business continuity.   This eLearning is: Interactive Self-paced   Device-friendly   2-3 hours of content   Mobile-optimised   Exam: 20 questions Multiple choise 30 minutes Closed book Minimum required score to pass: 65% [-]
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Nettstudie 12 måneder 5 000 kr
Learn best practices for making new and changed services available for use, in line with your organisation's policies and any agreements between the organisation and its ... [+]
Understand the purpose and key concepts of Release Management, elucidating its significance in planning, scheduling, and controlling the build, test, and deployment of releases to ensure they deliver the expected outcomes. The eLearning course: Interactive Self-paced Device-friendly 2-3 hour content Mobile-optimised Practical exercises   Exam:   20 questions Multiple choise Closed book 30 minutes Minimum required score to pass: 65% [-]
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Nettstudie 12 måneder 5 000 kr
The purpose of this module is to provide best practice guidance on how to set clear, business-based targets for service utility, warranty and experience. [+]
Understand the purpose and key concepts of the Service Level Management Practice, elucidating its significance in defining, negotiating, and managing service levels to meet customer expectations. This eLearning is: Interactive Self-paced   Device-friendly   2-3 hours content   Mobile-optimised   Practical exercises   Exam: 20 questions Multiple choise 30 minutes Closed book Minimum required score to pass: 65% [-]
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Nettkurs 12 måneder 12 000 kr
ITIL® 4 Specialist: Drive Stakeholder Value dekker alle typer engasjement og interaksjon mellom en tjenesteleverandør og deres kunder, brukere, leverandører og partnere. [+]
Kurset fokuserer på konvertering av etterspørsel til verdi via IT-relaterte tjenester. Modulen dekker sentrale emner som SLA-design, styring av flere leverandører, kommunikasjon, relasjonsstyring, CX- og UX-design, kartlegging av kunder og mer. E-læringskurset inneholder 18 timer med undervisning, og er delt inn i 8 moduler. Les mer om ITIL® 4 på  AXELOS sine websider. Du vil motta en e-post med tilgang til e-læringen, sertifiseringsvoucher og digital bok fra Peoplecert. Du avtaler tid for sertifiseringen som beskrevet i e-posten fra Peoplecert. [-]
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IPMA-sertifisering - 4 nivåer [+]
God prosjektledelse er en viktig suksessfaktor både for næringsliv og offentlig sektor. NFP og Tekna gjennomfører sertifisering av prosjektledere etter IPMAs (International Project Management Associations) prosedyrer og bestemmelser. Sertifiserte prosjektledere får et internasjonalt anerkjent sertifikat. Sertifiseringen gir også kandidatene et kompetanseløft såvel som økt selvinnsikt [-]
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Virtuelt eller personlig 3 dager 12 400 kr
Utvikle 3D-modeller og lage realistiske bilder og animasjoner av disse. [+]
AutoCAD 3D introduksjonskurs: Deltagerne skal kunne skille mellom ulike modelltyper, og kjenne til grunnprinsipper for 3D-modellering og bruk av koordinatsystem, samt beherske bruk av betraktningsvinkler og skjermnavigering. Koordinatsystemer Angivelse av punkter i rommet Solid modellering Surface modellering Mesh modellering Sette opp Layout i paperspace, projeksjoner og snitt Lagstruktur og lagdefinisjon, farger, linjetyper, målsetting Lyssetting, naturlig sollys og lokale lyskilder Knytte materialer til objekt eller til lag Renderfunksjoner Animasjon og video [-]
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Nettkurs 20 timer 10 500 kr
Bestill vår sertifiseringspakke: e-læringskurs og online eksamen i PRINCE2® Foundation. [+]
Ønsker du en sertifisering i PRINCE2® Foundation, men trenger full fleksibilitet til å studere hvor og når du vil? Da er vår sertifiseringspakke den rette løsningen for deg! Den består av et e-læringskurs og online eksamen i PRINCE2® Foundation. Du trenger ingen forkunnskaper for å ta dette kurset, og har tilgang til alt i 12 måneder!   Vi tilbyr et 100 % norsk PRINCE2® Foundation e-læringskurs. Online sertifiseringseksamen er inkludert i prisen.   Kurset er skreddersydd for deg som er travel Kurset er tilgjengelig i 12 måneder fra kjøpsdato Gjennomfør eksamen når det passer for deg og innen 12 måneder Kurset er utviklet av våre beste PRINCE2®-trenere Læringsutbytte   Du lærer PRINCE2®-prosjektmetoden og får kunnskap om hvordan et PRINCE2®-prosjekt gjennomføres fra oppstart til avslutning Du opparbeider deg god forståelse for den internasjonalt anerkjente «beste praksis»-metoden Du styrker dine karrieremuligheter med en ettertraktet sertifisering Du øker din prosjektkompetanse slik at du oppnår bedre prosjektresultater PRINCE2® er bredt anerkjent som markedets ledende prosjektmetode og vokser i omfang, både i Norge og på verdensbasis.   Målgruppe Kurset passer for deg som: Ønsker å få inngående kjennskap til PRINCE2®-prosjektmetoden Ønsker å formalisere din prosjektkompetanse gjennom en sertifisering på PRINCE2® Foundation-nivå Ønsker å lære mer om prosjektledelse og eierstyring av prosjekter   Innhold i kurset I e-læringskurset blir du kjent med: PRINCE2® begreper og definisjoner De ulike 7 prosessene, 7 temaene og 7 prinsippene i PRINCE2® PRINCE2® metoden i et prosjekt Kurset består av 18 kursmoduler samt testeksamener. Kursdetaljer og forberedelser KursgjennomføringE-læringen kan startes og stoppes akkurat slik du ønsker, og du velger selv hvor lenge du studerer av gangen. Du har tilgang til e-læringskurset i 12 måneder fra kjøpsdato. Estimert tid for gjennomføring av kurset er 20 timer. Eksamen i PRINCE2® FoundationVi anbefaler at du melder deg opp til online eksamen etter at du har gjennomført e-læringskurset. Du velger selv et tidspunkt som passer for deg. Online eksamen er tilgjengelig i 12 måneder fra du kjøper sertifiseringspakken. Du får informasjon om hvordan du melder deg opp til eksamen når du bestiller kurspakken. Omfang: 60 multiple choice-spørsmål, hvorav 55 % må være riktig for å bestå. Varighet: 60 minutter. (75 minutter dersom du tar eksamen på et språk som ikke er ditt morsmål). Gjennomføring av eksamen: Eksamen gjennomføres online. Krever internettilgang, lyd, mikrofon og web-kamera.   PRINCE2® is a registered trademark of the PeopleCert group. Used under licence from PeopleCert. All rights reserved. [-]
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Nettkurs 2 timer 1 990 kr
Et kortere alternativ til 40timerskurs. Loven åpner for tilpasset HMS kurs for verneombud. Vi tilbyr nettbasert opplæring for Verneombud [+]
I utgangspunktet skal alle bedrifter ha verneombud. Av erfaring vet vi at små, gjerne nystartede bedrifter, ikke har tid eller råd til å gjennomføre 40timers HMS kurs for verneombud. Loven åpner heldigvis for en tilpasset løsning. Dette HMS kurset for verneombud er et fullverdig alternativ til 40timers verneombudskurs, slik Forskrift om organisering, ledelse og medvirkning §3-19 åpner for. Start HMS kurset når som helst, det kreves ingen påmelding. Kurset består av to deler: Teoridel Vi har organisert relevante lover, forskrfter, artikler og nettresurser slik at du effektivt kan sette deg inn i materialet foran datamaskinen. Praksisdel Når du har oversikt over materialet, tar du "eksamen". Dette er en kunnskapstest som bekrefter at du har tilstrekkelig kunskap om verneombudets rolle i HMS arbeidet. Hva får du? Etter at kurset er bestått får du gyldig kursbevis samt 12 måneder fri tilgang til nettbasert internkontrollsystem for din bedrift of bransje. [-]
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Oslo 3 dager 27 900 kr
13 Aug
13 Aug
12 Nov
DevOps Engineering on AWS [+]
DevOps Engineering on AWS [-]
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47 PLN
Zapobieganie pożarom w branży wiatrowej [+]
Podstawowy kurs GWO Świadomość Pożarowa:Ten kurs jest przeznaczony dla uczestników, którzy będą pracować w elektrowni wiatrowej. Podstawowy kurs Świadomości Pożarowej jest oddzielnym modułem w ramach szkolenia GWO, trwającym pół dnia, czyli 4 godziny. Naszym celem jest, abyś jako uczestnik ukończył kurs z dobrą znajomością tego, jak może powstać pożar i jakie procedury należy stosować, gdy do niego dojdzie. [-]
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1 semester 13 000 kr
Barne- og ungdomsarbeider 1sem [+]
Barne- og ungdomsarbeider vg2   kurs over 1 semester som fører frem til fagbrev    Undervisning i programfagene for Barne- og ungdomsarbeider vg2:   Pedagogisk arbeid – Kommunikasjon og samhandling – Yrkesliv i barne- og ungdomsarbeiderfag. Undervisning høsten 2024:  start 03.09.2024 – slutt 26.11.2024, tirsdager kl. 17.00 – 20.30. Kursavgift kr. 13.000,- kan deles i 4 månedlige avdrag, kr. 200,- i avdragsgebyr pr. avdrag.   Fellesinformasjon: Sted:         Digitalt klasserom Lånekassen:  Utdanningen er godkjent for lån og stipend i Lånekassen Eksamen:     Teoretisk del av fagprøven. Privatisteksamen etter gjeldende regler.  Påmeldingsfrist 31.07.2024.   Eksamensform  Kurset er eksamensforberedende og fører frem til fagbrev. Privatisteksamen etter gjeldende regler. Oppmelding til privatisteksamen er elektronisk.   Fagprøven som praksiskandidat: Fagprøven består av en teoretisk del og en praktisk del. Dette gjelder for praksiskandidater – de som har minst 5 års godkjent praksis fra yrket, avlegger teoretisk del av fagprøve i tillegg til den praktiske fagprøven.  Det kreves ikke dokumentert praksis for å avlegge den teoretiske prøven.  For å kunne fremstille seg til den praktiske del av fagprøven kreves det dokumentasjon på 5 års godkjent praksis. Praksis vurderes av fylkeskommunen hvor du bor.   Fagprøven for de som følger skolemodellen (lærlinger): Har du allmennfagene/fellesfagene fra ordinær videregående skole, anbefaler vi deg å ta privatisteksamen i samtlige programfag for vg1 og vg2. Du kan da søke lærlingeplass for 2 år. De som er lærlinger må ta eksamen i hvert enkelt fag for vg1 og for vg2 i tillegg til teoretisk og praktisk fagprøve. Om du ønsker ytterligere informasjon kurset eller om du har spørsmål om regelverk og eksamen - ring 91358038.   [-]
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Virtuelt klasserom 2 dager 17 500 kr
This TOGAF® 9.2 Training Course: Level 1 Foundation introduces the latest version of TOGAF and will help you to prepare to take The Open Group's examination leading to t... [+]
COURSE OVERVIEW This course introduces all of thetopics defined as the Learning Outcomes upon which the TOGAF® 9.2  Part 1 Examination is based to the level needed to pass the examination. Candidates should be aware that this course does not address these topics in detail and additional study is required. This TOGAF® for Practitioners - Level 1 Foundation course is accredited by The Open Group. TOGAF® is a registered trademark of The Open Group. TARGET AUDIENCE Enterprise Architect Solution Architect ERP/SAP Architect Data Architect Technical Architect Security Architect EA/ Governance Consultant Business Analyst.   COURSE CONTENT The 2 day course introduces many of the features that are common to TOGAF® 9.2: The business rationale for Enterprise Architecture and TOGAF® The TOGAF® Architecture Development Method and its deliverables, including Business, Data, Applications and Technology Architecture The Enterprise Continuum Enterprise Architecture Governance Architecture Principles and their development Architecture Views and Viewpoints An Introduction to Building Blocks Architecture Partitioning Content Framework and Meta Model Capability Based Planning Business Transformation Readiness Architecture Repository   TEST CERTIFICATION This course prepares candidates for the TOGAF® 9.2 Part 1 examination The exam (60 minutes) is in closed-book format, and includes 40 multiple-choice questions. The passing score is 55% (22 out of 40 questions) An examination voucher is provided as part of this course, delegates are required to self book at a time and location that is convenient to themselves.   HVORFOR VELGE SG PARTNER AS:  Flest kurs med Startgaranti Rimeligste kurs Beste service og personlig oppfølgning Tilgang til opptak etter endt kurs Partner med flere av verdens beste kursleverandører   [-]
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Virtuelt klasserom 4 dager 25 000 kr
In this course, the student will learn about the data engineering patterns and practices as it pertains to working with batch and real-time analytical solutions using Azu... [+]
COURSE OVERVIEW Students will begin by understanding the core compute and storage technologies that are used to build an analytical solution. They will then explore how to design an analytical serving layers and focus on data engineering considerations for working with source files. The students will learn how to interactively explore data stored in files in a data lake. They will learn the various ingestion techniques that can be used to load data using the Apache Spark capability found in Azure Synapse Analytics or Azure Databricks, or how to ingest using Azure Data Factory or Azure Synapse pipelines. The students will also learn the various ways they can transform the data using the same technologies that is used to ingest data. The student will spend time on the course learning how to monitor and analyze the performance of analytical system so that they can optimize the performance of data loads, or queries that are issued against the systems. They will understand the importance of implementing security to ensure that the data is protected at rest or in transit. The student will then show how the data in an analytical system can be used to create dashboards, or build predictive models in Azure Synapse Analytics. TARGET AUDIENCE The primary audience for this course is data professionals, data architects, and business intelligence professionals who want to learn about data engineering and building analytical solutions using data platform technologies that exist on Microsoft Azure. The secondary audience for this course data analysts and data scientists who work with analytical solutions built on Microsoft Azure. COURSE OBJECTIVES   Explore compute and storage options for data engineering workloads in Azure Design and Implement the serving layer Understand data engineering considerations Run interactive queries using serverless SQL pools Explore, transform, and load data into the Data Warehouse using Apache Spark Perform data Exploration and Transformation in Azure Databricks Ingest and load Data into the Data Warehouse Transform Data with Azure Data Factory or Azure Synapse Pipelines Integrate Data from Notebooks with Azure Data Factory or Azure Synapse Pipelines Optimize Query Performance with Dedicated SQL Pools in Azure Synapse Analyze and Optimize Data Warehouse Storage Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link Perform end-to-end security with Azure Synapse Analytics Perform real-time Stream Processing with Stream Analytics Create a Stream Processing Solution with Event Hubs and Azure Databricks Build reports using Power BI integration with Azure Synpase Analytics Perform Integrated Machine Learning Processes in Azure Synapse Analytics COURSE CONTENT Module 1: Explore compute and storage options for data engineering workloads This module provides an overview of the Azure compute and storage technology options that are available to data engineers building analytical workloads. This module teaches ways to structure the data lake, and to optimize the files for exploration, streaming, and batch workloads. The student will learn how to organize the data lake into levels of data refinement as they transform files through batch and stream processing. Then they will learn how to create indexes on their datasets, such as CSV, JSON, and Parquet files, and use them for potential query and workload acceleration. Introduction to Azure Synapse Analytics Describe Azure Databricks Introduction to Azure Data Lake storage Describe Delta Lake architecture Work with data streams by using Azure Stream Analytics Lab 1: Explore compute and storage options for data engineering workloads Combine streaming and batch processing with a single pipeline Organize the data lake into levels of file transformation Index data lake storage for query and workload acceleration After completing module 1, students will be able to: Describe Azure Synapse Analytics Describe Azure Databricks Describe Azure Data Lake storage Describe Delta Lake architecture Describe Azure Stream Analytics Module 2: Design and implement the serving layer This module teaches how to design and implement data stores in a modern data warehouse to optimize analytical workloads. The student will learn how to design a multidimensional schema to store fact and dimension data. Then the student will learn how to populate slowly changing dimensions through incremental data loading from Azure Data Factory. Design a multidimensional schema to optimize analytical workloads Code-free transformation at scale with Azure Data Factory Populate slowly changing dimensions in Azure Synapse Analytics pipelines Lab 2: Designing and Implementing the Serving Layer Design a star schema for analytical workloads Populate slowly changing dimensions with Azure Data Factory and mapping data flows After completing module 2, students will be able to: Design a star schema for analytical workloads Populate a slowly changing dimensions with Azure Data Factory and mapping data flows Module 3: Data engineering considerations for source files This module explores data engineering considerations that are common when loading data into a modern data warehouse analytical from files stored in an Azure Data Lake, and understanding the security consideration associated with storing files stored in the data lake. Design a Modern Data Warehouse using Azure Synapse Analytics Secure a data warehouse in Azure Synapse Analytics Lab 3: Data engineering considerations Managing files in an Azure data lake Securing files stored in an Azure data lake After completing module 3, students will be able to: Design a Modern Data Warehouse using Azure Synapse Analytics Secure a data warehouse in Azure Synapse Analytics Module 4: Run interactive queries using Azure Synapse Analytics serverless SQL pools In this module, students will learn how to work with files stored in the data lake and external file sources, through T-SQL statements executed by a serverless SQL pool in Azure Synapse Analytics. Students will query Parquet files stored in a data lake, as well as CSV files stored in an external data store. Next, they will create Azure Active Directory security groups and enforce access to files in the data lake through Role-Based Access Control (RBAC) and Access Control Lists (ACLs). Explore Azure Synapse serverless SQL pools capabilities Query data in the lake using Azure Synapse serverless SQL pools Create metadata objects in Azure Synapse serverless SQL pools Secure data and manage users in Azure Synapse serverless SQL pools Lab 4: Run interactive queries using serverless SQL pools Query Parquet data with serverless SQL pools Create external tables for Parquet and CSV files Create views with serverless SQL pools Secure access to data in a data lake when using serverless SQL pools Configure data lake security using Role-Based Access Control (RBAC) and Access Control List After completing module 4, students will be able to: Understand Azure Synapse serverless SQL pools capabilities Query data in the lake using Azure Synapse serverless SQL pools Create metadata objects in Azure Synapse serverless SQL pools Secure data and manage users in Azure Synapse serverless SQL pools Module 5: Explore, transform, and load data into the Data Warehouse using Apache Spark This module teaches how to explore data stored in a data lake, transform the data, and load data into a relational data store. The student will explore Parquet and JSON files and use techniques to query and transform JSON files with hierarchical structures. Then the student will use Apache Spark to load data into the data warehouse and join Parquet data in the data lake with data in the dedicated SQL pool. Understand big data engineering with Apache Spark in Azure Synapse Analytics Ingest data with Apache Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Apache Spark Pools in Azure Synapse Analytics Integrate SQL and Apache Spark pools in Azure Synapse Analytics Lab 5: Explore, transform, and load data into the Data Warehouse using Apache Spark Perform Data Exploration in Synapse Studio Ingest data with Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Spark pools in Azure Synapse Analytics Integrate SQL and Spark pools in Azure Synapse Analytics After completing module 5, students will be able to: Describe big data engineering with Apache Spark in Azure Synapse Analytics Ingest data with Apache Spark notebooks in Azure Synapse Analytics Transform data with DataFrames in Apache Spark Pools in Azure Synapse Analytics Integrate SQL and Apache Spark pools in Azure Synapse Analytics Module 6: Data exploration and transformation in Azure Databricks This module teaches how to use various Apache Spark DataFrame methods to explore and transform data in Azure Databricks. The student will learn how to perform standard DataFrame methods to explore and transform data. They will also learn how to perform more advanced tasks, such as removing duplicate data, manipulate date/time values, rename columns, and aggregate data. Describe Azure Databricks Read and write data in Azure Databricks Work with DataFrames in Azure Databricks Work with DataFrames advanced methods in Azure Databricks Lab 6: Data Exploration and Transformation in Azure Databricks Use DataFrames in Azure Databricks to explore and filter data Cache a DataFrame for faster subsequent queries Remove duplicate data Manipulate date/time values Remove and rename DataFrame columns Aggregate data stored in a DataFrame After completing module 6, students will be able to: Describe Azure Databricks Read and write data in Azure Databricks Work with DataFrames in Azure Databricks Work with DataFrames advanced methods in Azure Databricks Module 7: Ingest and load data into the data warehouse This module teaches students how to ingest data into the data warehouse through T-SQL scripts and Synapse Analytics integration pipelines. The student will learn how to load data into Synapse dedicated SQL pools with PolyBase and COPY using T-SQL. The student will also learn how to use workload management along with a Copy activity in a Azure Synapse pipeline for petabyte-scale data ingestion. Use data loading best practices in Azure Synapse Analytics Petabyte-scale ingestion with Azure Data Factory Lab 7: Ingest and load Data into the Data Warehouse Perform petabyte-scale ingestion with Azure Synapse Pipelines Import data with PolyBase and COPY using T-SQL Use data loading best practices in Azure Synapse Analytics After completing module 7, students will be able to: Use data loading best practices in Azure Synapse Analytics Petabyte-scale ingestion with Azure Data Factory Module 8: Transform data with Azure Data Factory or Azure Synapse Pipelines This module teaches students how to build data integration pipelines to ingest from multiple data sources, transform data using mapping data flowss, and perform data movement into one or more data sinks. Data integration with Azure Data Factory or Azure Synapse Pipelines Code-free transformation at scale with Azure Data Factory or Azure Synapse Pipelines Lab 8: Transform Data with Azure Data Factory or Azure Synapse Pipelines Execute code-free transformations at scale with Azure Synapse Pipelines Create data pipeline to import poorly formatted CSV files Create Mapping Data Flows After completing module 8, students will be able to: Perform data integration with Azure Data Factory Perform code-free transformation at scale with Azure Data Factory Module 9: Orchestrate data movement and transformation in Azure Synapse Pipelines In this module, you will learn how to create linked services, and orchestrate data movement and transformation using notebooks in Azure Synapse Pipelines. Orchestrate data movement and transformation in Azure Data Factory Lab 9: Orchestrate data movement and transformation in Azure Synapse Pipelines Integrate Data from Notebooks with Azure Data Factory or Azure Synapse Pipelines After completing module 9, students will be able to: Orchestrate data movement and transformation in Azure Synapse Pipelines Module 10: Optimize query performance with dedicated SQL pools in Azure Synapse In this module, students will learn strategies to optimize data storage and processing when using dedicated SQL pools in Azure Synapse Analytics. The student will know how to use developer features, such as windowing and HyperLogLog functions, use data loading best practices, and optimize and improve query performance. Optimize data warehouse query performance in Azure Synapse Analytics Understand data warehouse developer features of Azure Synapse Analytics Lab 10: Optimize Query Performance with Dedicated SQL Pools in Azure Synapse Understand developer features of Azure Synapse Analytics Optimize data warehouse query performance in Azure Synapse Analytics Improve query performance After completing module 10, students will be able to: Optimize data warehouse query performance in Azure Synapse Analytics Understand data warehouse developer features of Azure Synapse Analytics Module 11: Analyze and Optimize Data Warehouse Storage In this module, students will learn how to analyze then optimize the data storage of the Azure Synapse dedicated SQL pools. The student will know techniques to understand table space usage and column store storage details. Next the student will know how to compare storage requirements between identical tables that use different data types. Finally, the student will observe the impact materialized views have when executed in place of complex queries and learn how to avoid extensive logging by optimizing delete operations. Analyze and optimize data warehouse storage in Azure Synapse Analytics Lab 11: Analyze and Optimize Data Warehouse Storage Check for skewed data and space usage Understand column store storage details Study the impact of materialized views Explore rules for minimally logged operations After completing module 11, students will be able to: Analyze and optimize data warehouse storage in Azure Synapse Analytics Module 12: Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link In this module, students will learn how Azure Synapse Link enables seamless connectivity of an Azure Cosmos DB account to a Synapse workspace. The student will understand how to enable and configure Synapse link, then how to query the Azure Cosmos DB analytical store using Apache Spark and SQL serverless. Design hybrid transactional and analytical processing using Azure Synapse Analytics Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark pools Query Azure Cosmos DB with serverless SQL pools Lab 12: Support Hybrid Transactional Analytical Processing (HTAP) with Azure Synapse Link Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark for Synapse Analytics Query Azure Cosmos DB with serverless SQL pool for Azure Synapse Analytics After completing module 12, students will be able to: Design hybrid transactional and analytical processing using Azure Synapse Analytics Configure Azure Synapse Link with Azure Cosmos DB Query Azure Cosmos DB with Apache Spark for Azure Synapse Analytics Query Azure Cosmos DB with SQL serverless for Azure Synapse Analytics Module 13: End-to-end security with Azure Synapse Analytics In this module, students will learn how to secure a Synapse Analytics workspace and its supporting infrastructure. The student will observe the SQL Active Directory Admin, manage IP firewall rules, manage secrets with Azure Key Vault and access those secrets through a Key Vault linked service and pipeline activities. The student will understand how to implement column-level security, row-level security, and dynamic data masking when using dedicated SQL pools. Secure a data warehouse in Azure Synapse Analytics Configure and manage secrets in Azure Key Vault Implement compliance controls for sensitive data Lab 13: End-to-end security with Azure Synapse Analytics Secure Azure Synapse Analytics supporting infrastructure Secure the Azure Synapse Analytics workspace and managed services Secure Azure Synapse Analytics workspace data After completing module 13, students will be able to: Secure a data warehouse in Azure Synapse Analytics Configure and manage secrets in Azure Key Vault Implement compliance controls for sensitive data Module 14: Real-time Stream Processing with Stream Analytics In this module, students will learn how to process streaming data with Azure Stream Analytics. The student will ingest vehicle telemetry data into Event Hubs, then process that data in real time, using various windowing functions in Azure Stream Analytics. They will output the data to Azure Synapse Analytics. Finally, the student will learn how to scale the Stream Analytics job to increase throughput. Enable reliable messaging for Big Data applications using Azure Event Hubs Work with data streams by using Azure Stream Analytics Ingest data streams with Azure Stream Analytics Lab 14: Real-time Stream Processing with Stream Analytics Use Stream Analytics to process real-time data from Event Hubs Use Stream Analytics windowing functions to build aggregates and output to Synapse Analytics Scale the Azure Stream Analytics job to increase throughput through partitioning Repartition the stream input to optimize parallelization After completing module 14, students will be able to: Enable reliable messaging for Big Data applications using Azure Event Hubs Work with data streams by using Azure Stream Analytics Ingest data streams with Azure Stream Analytics Module 15: Create a Stream Processing Solution with Event Hubs and Azure Databricks In this module, students will learn how to ingest and process streaming data at scale with Event Hubs and Spark Structured Streaming in Azure Databricks. The student will learn the key features and uses of Structured Streaming. The student will implement sliding windows to aggregate over chunks of data and apply watermarking to remove stale data. Finally, the student will connect to Event Hubs to read and write streams. Process streaming data with Azure Databricks structured streaming Lab 15: Create a Stream Processing Solution with Event Hubs and Azure Databricks Explore key features and uses of Structured Streaming Stream data from a file and write it out to a distributed file system Use sliding windows to aggregate over chunks of data rather than all data Apply watermarking to remove stale data Connect to Event Hubs read and write streams After completing module 15, students will be able to: Process streaming data with Azure Databricks structured streaming Module 16: Build reports using Power BI integration with Azure Synpase Analytics In this module, the student will learn how to integrate Power BI with their Synapse workspace to build reports in Power BI. The student will create a new data source and Power BI report in Synapse Studio. Then the student will learn how to improve query performance with materialized views and result-set caching. Finally, the student will explore the data lake with serverless SQL pools and create visualizations against that data in Power BI. Create reports with Power BI using its integration with Azure Synapse Analytics Lab 16: Build reports using Power BI integration with Azure Synpase Analytics Integrate an Azure Synapse workspace and Power BI Optimize integration with Power BI Improve query performance with materialized views and result-set caching Visualize data with SQL serverless and create a Power BI report After completing module 16, students will be able to: Create reports with Power BI using its integration with Azure Synapse Analytics Module 17: Perform Integrated Machine Learning Processes in Azure Synapse Analytics This module explores the integrated, end-to-end Azure Machine Learning and Azure Cognitive Services experience in Azure Synapse Analytics. You will learn how to connect an Azure Synapse Analytics workspace to an Azure Machine Learning workspace using a Linked Service and then trigger an Automated ML experiment that uses data from a Spark table. You will also learn how to use trained models from Azure Machine Learning or Azure Cognitive Services to enrich data in a SQL pool table and then serve prediction results using Power BI. Use the integrated machine learning process in Azure Synapse Analytics Lab 17: Perform Integrated Machine Learning Processes in Azure Synapse Analytics Create an Azure Machine Learning linked service Trigger an Auto ML experiment using data from a Spark table Enrich data using trained models Serve prediction results using Power BI After completing module 17, students will be able to: Use the integrated machine learning process in Azure Synapse Analytics     [-]
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