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Microsoft Fabric: Monitor and Optimize an Analytics Solution · LearnSpace
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courseraIT и технологии

Microsoft Fabric: Monitor and Optimize an Analytics Solution

Курс от Whizlabs
Средний≈ 13.3 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Welcome to Microsoft Fabric: Monitor and Optimize Analytics Solutions, an advanced and hands-on course designed for data professionals who want to master monitoring, performance tuning, and troubleshooting within Microsoft Fabric’s unified analytics platform. This course teaches you how to ensure that Fabric workloads remain reliable, performant, and optimized for enterprise-scale analytics. This advanced course is designed for data engineers and analytics professionals who want to master performance optimization, monitoring, and troubleshooting within Microsoft Fabric. Throughout the course, you’ll explore how to design scalable semantic models, optimize enterprise-scale workloads, diagnose ingestion and transformation issues, and accelerate performance for lakehouses, Spark environments, event streams, and data warehouses. With 3+ hours of focused video content, the course blends conceptual understanding with real-world demonstrations inside Fabric. You will learn how to tune DAX, improve query performance, optimize pipelines, resolve Eventstream/Eventhouse errors, and manage large-scale data storage. Each module includes interactive quizzes and in-video checkpoints to reinforce learning. Enroll in Microsoft Fabric: Optimize, Monitor, and Troubleshoot Data Solutions to gain the skills needed to improve system reliability, maximize performance efficiency, and support enterprise-grade data workloads in Microsoft Fabric. Course Modules Module 1: Data Modeling and Optimization in Microsoft Fabric: Module 2: Monitoring, Optimization, and Troubleshooting in Microsoft Fabric Module 3: Data Engineering and Performance Optimization in Microsoft Fabric Recommended Background A basic understanding of Microsoft Fabric components such as Lakehouses, Warehouses, Pipelines, and Eventstreams. Familiarity with core data engineering concepts - data ingestion, transformation, modeling, and analytics workflows. Working knowledge of SQL or experience with Power BI; exposure to DAX or PySpark is helpful but not required. Foundational experience with cloud-based analytics platforms like Azure, Databricks, or Snowflake (optional but beneficial). Awareness of analytics workloads including dashboards, lakehouses, warehouses, and real-time streaming architectures. Interest in performance tuning, monitoring, and optimization of large-scale data workloads in modern analytics environments. By the End of This Course, You Will Be Able To: Monitor and troubleshoot data ingestion, transformation, and semantic models using Microsoft Fabric monitoring tools, alerts, and diagnostic views. Optimize performance for pipelines, notebooks, SQL endpoints, Eventstreams, Spark workloads, and semantic models across Fabric’s unified analytics engine. Identify, analyze, and resolve Fabric errors including T-SQL, Eventhouse, pipeline, and Dataflow errors using built-in debugging capabilities. Enhance enterprise-scale performance with best practices for query tuning, caching, incremental refresh, storage modes, and data optimization techniques. Operationalize and govern analytics solutions through proactive monitoring, alerting, and continuous performance improvement. Who Should Take This Course? This course is ideal for: Data Engineers working with performance-critical analytics workloads Fabric & Power BI Developers managing enterprise semantic models Data Architects & BI Engineers responsible for optimization at scale Analytics Administrators monitoring and maintaining Fabric environments Professionals preparing for Microsoft Fabric Associate or Expert certifications

Навыки, которые вы освоите

Power BIData ModelingPerformance TuningAnalyticsApache SparkData Analysis Expressions (DAX)Model OptimizationDatabricksReal Time DataPySparkData LakesSystem MonitoringExtract, Transform, LoadContinuous MonitoringStar SchemaTransact-SQLDataflowData StorageData PipelinesMicrosoft Azure

Программа курса

3 модулей · 47 учебных материалов

01Data Modeling and Optimization in Microsoft Fabric15 материалов

Design and Build Semantic Models

Specialization Course IntroductionЧтениеWelcome to the CourseЧтениеData Modeling and Optimization in Microsoft Fabric - OverviewЧтениеChoose a storage modeВидео

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Whizlabs Instructor

Преподаватель курса

Microsoft Fabric: Monitor and Optimize an Analytics Solution
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Обучение на Coursera

≈ 13.3 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Испанский, Японский

Часть программы вашего университета
Use cases for DAX Studio and Tabular Editor 2 - OverviewВидео
Star schema for a semantic model - DemoВидео
Implement relationships - DemoВидео
DAX Calculations and Functions - DemoВидео
Calculation groups, dynamic strings, and field parameters - DemoВидео
Large Format Dataset Design and Building - DemoВидео
Composite Models and Aggregations - OverviewВидео
Design and Build Semantic Models - Practice AssessmentЗадание
Data Modeling and Optimization in Microsoft Fabric - Graded AssessmentЗадание
Meet and GreetОбсуждение
Microsoft Fabric: Data Modeling, Monitoring, Optimization & Troubleshooting -Interactive DialogueDIALOGUE
02Monitoring, Optimization, and Troubleshooting in Microsoft Fabric14 материалов

Monitor Fabric items

Monitoring, Optimization, and Troubleshooting in Microsoft Fabric - OverviewЧтениеMonitoring data ingestion and transformation - Part 1ВидеоMonitoring data ingestion and transformation - Part 2ВидеоConfigure alerts and Monitor activities in Microsoft Fabric - DemoВидеоIncremental Refresh - DemoВидеоMonitor Microsoft Fabric items - Practice AssessmentЗадание

Optimize enterprise-scale semantic models, Identify and resolve errors

Query Performance Improvements - DemoВидеоDAX Performance Optimization - DemoВидеоSemantic Model Optimization Tools - DemoВидеоMicrosoft Fabric Eventstream and Eventhouse - Overview and ComparisionВидеоIdentify and resolve pipeline, notebook and dataflow errorsВидеоIdentify and resolve T-SQL, eventhouse and eventstream errorsВидео
03Data Engineering and Performance Optimization in Microsoft Fabric18 материалов

Optimize performance

Data Engineering and Performance Optimization in Microsoft Fabric - OverviewЧтениеLakehouses in Microsoft FabricВидеоApache Spark in Microsoft FabricВидеоDelta Lake Tables In Microsoft FabricВидеоOptimize a lakehouse table, pipeline and data warehouse in Microsoft FabricВидеоOptimize eventstreams and eventhouses in Microsoft FabricВидеоOptimize query and Spark performance in Microsoft FabricВидеоData Warehouses in Microsoft FabricВидеоLoad and Query data into a Microsoft Fabric data warehouseВидеоOptimize performance - Practice AssessmentЗадание

Optimize and troubleshoot data storage and data processing

Recommendations for optimizing data performanceВидеоTroubleshoot Azure Data Factory and Synapse pipelinesВидеоMonitor Azure Data Factory - OverviewВидеоCourse ConclusionЧтениеOptimize and troubleshoot data storage and data processing - Practice AssessmentЗаданиеData Engineering and Performance Optimization in Microsoft Fabric - Graded AssessmentЗадание
Optimize enterprise-scale semantic models, Identify and resolve errors - Practice AssessmentЗадание
Monitoring, Optimization, and Troubleshooting in Microsoft Fabric - Graded AssessmentЗадание
DP-700 Specialization: Conclusion & SummaryВидео
DP-700 Specialization: What's Next And Best PracticesВидео