Jump-start your journey toward mastering open data architectural patterns by learning the fundamentals and applications of open table formats
Engineering Lakehouses with Open Table Formats provides detailed insights into lakehouse concepts, and dives deep into the practical implementation of open table formats such as Apache Iceberg, Apache Hudi, and Delta Lake.
You’ll explore the internals of a table format and learn in detail about the transactional capabilities of lakehouses. You’ll also get hands on with each table format with exercises using popular computing engines, such as Apache Spark, Flink, Trino, and Python-based tools. The book addresses advanced topics, including performance optimization techniques and interoperability among different formats, equipping you to build production-ready lakehouses. With step-by-step explanations, you’ll get to grips with the key components of lakehouse architecture and learn how to build, maintain, and optimize them.
By the end of this book, you’ll be proficient in evaluating and implementing open table formats, optimizing lakehouse performance, and applying these concepts to real-world scenarios, ensuring you make informed decisions in selecting the right architecture for your organization’s data needs.
This book is for data engineers, software engineers, and data architects who want to deepen their understanding of open table formats, such as Apache Iceberg, Apache Hudi, and Delta Lake, and see how they are used to build lakehouses. It is also valuable for professionals working with traditional data warehouses, relational databases, and data lakes who wish to transition to an open data architectural pattern. Basic knowledge of databases, Python, Apache Spark, Java, and SQL is recommended for a smooth learning experience.
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Dipankar Mazumdar is currently the Director of Developer Advocacy at Cloudera, where he leads global developer initiatives focused on lakehouse architectures and generative AI. Previously, he held developer advocacy roles at Dremio, Onehouse, and Qlik, contributing to open source projects such as Apache Iceberg, Apache Hudi, and XTable, among others. For most of his career, Dipankar has worked at the intersection of data engineering and AI. He has also contributed to O'Reilly's Apache Iceberg: The Definitive Guide and has spoken at numerous conferences, including Databricks Data + AI, Netflix Engineering, ApacheCon, Scale By the Bay, and Data Day Texas, among others.
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