Data Engineering Design Patterns : Recipes for Solving the Most Common Data Engineering Problems
Book Details
Format
Paperback / Softback
ISBN-10
1098165810
ISBN-13
9781098165819
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Apr 29th, 2025
Print length
340 Pages
Weight
652 grams
Dimensions
23.40 x 17.70 x 1.90 cms
Product Classification:
Database design & theoryDatabase design and theory
Ksh 11,500.00
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This hands-on guide shows you how to provide valuable data by focusing on various aspects of data engineering, including data ingestion, data quality, and idempotency. Bartosz Konieczny shows you how to of build reliable end-to-end data engineering projects, from data ingestion to data observability.
Data projects are an intrinsic part of an organization's technical ecosystem, but data engineers in many companies are still trying to solve problems that others have already solved. This hands-on guide shows you how to provide valuable data by focusing on various aspects of data engineering, including data ingestion, data quality, idempotency, and more. Author Bartosz Konieczny guides you through the process of building reliable end-to-end data engineering projects, from data ingestion to data observability, focusing on data engineering design patterns that solve common business problems in a secure and storage-optimized manner. Each pattern includes a user-facing description of the problem, solutions, and consequences that place the pattern into the context of real-life scenarios. Throughout this journey, you'll use open source data tools and public cloud services to see how to put each pattern into practice. You'll learn:Challenges data engineers face and their impact on data systemsHow these challenges relate to data system componentsWhat data engineering patterns are forHow to identify and fix issues with your current data componentsTechnology-agnostic solutions to new and existing data projectsHow to implement patterns with Apache Airflow, Apache Spark, Apache Flink, and Delta LakeBartosz Konieczny is a freelance data engineer who's been coding for more than 15 years. He's held various senior hands-on positions that helped him work on many data engineering problems in batch and stream processing.
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