Engineering Data Mesh in Azure Cloud
內容簡介
Overcome data mesh adoption challenges using the cloud-scale analytics framework and make your data analytics landscape agile and efficient by using standard architecture patterns for diverse analytical workloadsKey FeaturesDelve into core data mesh concepts and apply them to real-world situationsSafely reassess and redesign your framework for seamless data mesh integrationConquer practical challenges, from domain organization to building data contractsPurchase of the print or Kindle book includes a free PDF eBookBook Description
Decentralizing data and centralizing governance are practical, scalable, and modern approaches to data analytics. However, implementing a data mesh can feel like changing the engine of a moving car. Most organizations struggle to start and get caught up in the concept of data domains, spending months trying to organize domains. This is where Engineering Data Mesh in Azure Cloud can help.
The book starts by assessing your existing framework before helping you architect a practical design. As you progress, you'll focus on the Microsoft Cloud Adoption Framework for Azure and the cloud-scale analytics framework, which will help you quickly set up a landing zone for your data mesh in the cloud.
The book also resolves common challenges related to the adoption and implementation of a data mesh faced by real customers. It touches on the concepts of data contracts and helps you build practical data contracts that work for your organization. The last part of the book covers some common architecture patterns used for modern analytics frameworks such as artificial intelligence (AI).
By the end of this book, you'll be able to transform existing analytics frameworks into a streamlined data mesh using Microsoft Azure, thereby navigating challenges and implementing advanced architecture patterns for modern analytics workloads.What you will learnBuild a strategy to implement a data mesh in Azure CloudPlan your data mesh journey to build a collaborative analytics platformAddress challenges in designing, building, and managing data contractsGet to grips with monitoring and governing a data meshUnderstand how to build a self-service portal for analyticsDesign and implement a secure data mesh architectureResolve practical challenges related to data mesh adoptionWho this book is for
This book is for chief data officers and data architects of large and medium-size organizations who are struggling to maintain silos of data and analytics projects. Data architects and data engineers looking to understand data mesh and how it can help their organizations democratize data and analytics will also benefit from this book. Prior knowledge of managing centralized analytical systems, as well as experience with building data lakes, data warehouses, data pipelines, data integrations, and transformations is needed to get the most out of this book.Table of ContentsIntroducing Data MeshesBuilding a Data Mesh StrategyDeploying a Data Mesh Using the Azure Cloud-Scale Analytics FrameworkBuilding a Data Mesh Governance Framework Using Microsoft Azure ServicesSecurity Architecture for Data MeshesAutomating Deployment through Azure Resource Manager and Azure DevOpsBuilding a Self-Service Portal for Common Data Mesh OperationsHow to Design, Build, and Manage Data ContractsData Quality ManagementMaster Data ManagementMonitoring and Data ObservabilityMonitoring Data Mesh Costs and Building a Cross-Charging Model
(N.B. Please use the Look Inside option to see further chapters)
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