Data Management Engineering / Najlacnejšie knihy
Data Management Engineering

Code: 53783022

Data Management Engineering

by Andrii Bogdanovych

You know your database, your ETL tool, your BI platform cold. What you were never taught is how they fit together. You've built pipelines that work but that nobody can trace a bad number back through. You've modeled data that's te ... more

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Book synopsis

You know your database, your ETL tool, your BI platform cold. What you were never taught is how they fit together. You've built pipelines that work but that nobody can trace a bad number back through. You've modeled data that's technically correct but has no shared glossary behind it. You've shipped a quality check nobody ties back to an actual business consequence. Every decision was locally sound - the system as a whole is still incoherent. Data Management Engineering gives you the map individual tools never come with: a coherent framework connecting architecture, modeling, storage, integration, quality, and governance into one system, instead of disconnected specialties each learned from a different vendor's docs. The book translates the systematized practices of the international data management profession into concrete engineering decisions - architecture-selection criteria, model-design checklists, rollout sequences for quality controls - not a retelling of vendor marketing or abstract principles with no decision attached. One running example, a single online store whose architecture, models, pipelines, and organizational structure runs through all twenty-one chapters, shows how decisions in one chapter constrain the ones after it, instead of a string of unrelated toy examples. What's inside Twenty-one chapters in seven parts: Part I - Foundations. The core framework, data-handling ethics, and data governance strategy, tooling, standards, and metrics. Part II - Architecture and Modeling. Data architecture, the entity-relationship approach, and alternative notations - multidimensional, object-oriented, fact-based, temporal, NoSQL - with criteria for choosing among them. Part III - Storage, Security, and Integration. Database operations, data security, and integration patterns: ETL versus ELT, enterprise service bus, APIs. Part IV - Content, Reference, and Master Data. Document and content management, electronic discovery, reference and master data, entity resolution. Part V - Analytics, Metadata, and Quality. Data warehousing and business intelligence, metadata management, measuring and implementing data quality. Part VI - Big Data and Data Science. Strategy, sources, tools, techniques, and governance for large volumes of loosely structured data. Part VII - Maturity, Organization, and Change. Assessing your organization's data maturity, structuring roles, and managing the change that decides whether any of it sticks. Who this book is for

A basic familiarity with databases and the software development lifecycle is assumed. Why this book is differentIf you've ever had to reverse-engineer another engineer's data model, or explain why a "correct" pipeline produced the wrong number, this book gives you the shared framework that was missing.

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25.12



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