Data Engineering with dbt: A practical guide to building a cloud-based, pragmatic, and dependable data platform with SQL
Build automated and reliable pipelines to deploy, test, run, and monitor ELTs with dbt Cloud.
Data Engineering with dbt: A practical guide to building a cloud-based, pragmatic, and dependable data platform with SQL
Numéro d'article: 92952770

Data Engineering with dbt: A practical guide to building a cloud-based, pragmatic, and dependable data platform with SQL

Numéro d'article: 92952770

DZD 5669

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Ce qui se démarque

Comprehensive Guide
This book provides a complete roadmap for building a cloud-based data platform using dbt, ensuring readers gain practical knowledge and hands-on experience with essential SQL techniques.
Best Practices
Incorporating industry best practices, this guide helps data engineers optimize workflows, enhance data quality, and implement scalable solutions to tackle complex data challenges efficiently.
Real-World Application
Focused on pragmatic use cases, this resource equips professionals with strategies to deploy dependable data systems, addressing real-world problems that data teams frequently encounter in their projects.

Détails du produit

Shop Data Engineering with dbt: A practical guide to building a cloud-based, pragmatic, and dependable data platform with SQL online at a best price in Algeria. 1803246286
  • Use easy-to-apply patterns in SQL and Python to adopt modern analytics engineering to build agile platforms with dbt that are well-tested and simple to extend and runPurchase of the print or Kindle book includes a free PDF eBookKey FeaturesBuild a solid dbt base and learn data modeling and the modern data stack to become an analytics engineerBuild automated and reliable pipelines to deploy, test, run, and monitor ELTs with dbt CloudGuided dbt + Snowflake project to build a pattern-based architecture that delivers reliable datasetsBook Descriptiondbt Cloud helps professional analytics engineers automate the application of powerful and proven patterns to transform data from ingestion to delivery, enabling real DataOps.This book begins by introducing you to dbt and its role in the data stack, along with how it uses simple SQL to build your data platform, helping you and your team work better together. You’ll find out how to leverage data modeling, data quality, master data management, and more to build a simple-to-understand and future-proof solution. As you advance, you’ll explore the modern data stack, understand how data-related careers are changing, and see how dbt enables this transition into the emerging role of an analytics engineer. The chapters help you build a sample project using the free version of dbt Cloud, Snowflake, and GitHub to create a professional DevOps setup with continuous integration, automated deployment, ELT run, scheduling, and monitoring, solving practical cases you encounter in your daily work.By the end of this dbt book, you’ll be able to build an end-to-end pragmatic data platform by ingesting data exported from your source systems, coding the needed transformations, including master data and the desired business rules, and building well-formed dimensional models or wide tables that’ll enable you to build reports with the BI tool of your choice.What you will learnCreate a dbt Cloud account and understand the ELT workflowCombine Snowflake and dbt for building modern data engineering pipelinesUse SQL to transform raw data into usable data, and test its accuracyWrite dbt macros and use Jinja to apply software engineering principlesTest data and transformations to ensure reliability and data qualityBuild a lightweight pragmatic data platform using proven patternsWrite easy-to-maintain idempotent code using dbt materializationWho this book is forThis book is for data engineers, analytics engineers, BI professionals, and data analysts who want to learn how to build simple, futureproof, and maintainable data platforms in an agile way. Project managers, data team managers, and decision makers looking to understand the importance of building a data platform and foster a culture of high-performing data teams will also find this book useful. Basic knowledge of SQL and data modeling will help you get the most out of the many layers of this book. The book also includes primers on many data-related subjects to help juniors get started.Table of ContentsBasics of SQL to transform dataSetting up your dbt Cloud development environmentData modelling for data engineeringAnalytics Engineering as the New Core of Data EngineeringTransforming data with dbtWriting Maintainable CodeWorking with Dimensional DataDelivering Consistency In Your CodeDelivering Reliability In Your DataAgile developmentCollaborationDeployment, Execution and Documentation AutomationMoving beyond basicsEnhancing Software QualityPatterns for frequent use cases
Publisher Packt Publishing
Publication date June 30, 2023
Edition 1st
Language English
Print length 578 pages
ISBN-10 1803246286
ISBN-13 978-1803246284
Item Weight 2.16 pounds (980 grams)
Dimensions 7.5 x 1.31 x 9.25 inches (19.1 x 3.3 x 23.5 cm)

À qui est-ce destiné ?

Suitable For
  • Data Engineers

    Ideal for data engineers who want to develop practical skills in building reliable data pipelines using dbt and SQL.

  • Data Analysts

    Beneficial for analysts looking to enhance their data transformation capabilities and streamline reporting processes with dbt.

  • Cloud Enthusiasts

    Perfect for professionals interested in leveraging cloud technologies for building modern, efficient data platforms.

Not Suitable For
  • Beginner Programmers

    Not suitable for users with little to no programming experience, as the content assumes basic SQL knowledge.

DESCRIPTION DU PRODUIT

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Questions et réponses des clients

  • question: What is the main focus of 'Data Engineering With Dbt'?

    répondre: The book centers around building an effective cloud-based data platform using dbt (data build tool). It provides practical insights into transforming and modeling your data reliably with SQL. Readers can expect to learn expert tips on how to create a solid data pipeline, streamline data workflows, and ensure data quality. This is particularly useful for data engineers, analysts, and professionals looking to implement modern data practices in their organizations.
  • question: Who should read 'Data Engineering With Dbt'?

    répondre: This guide is ideal for data engineers, analytics professionals, and anyone interested in mastering data transformation and modeling principles. Whether you're a beginner looking to understand the basics or a seasoned professional aiming to enhance your skills with dbt, this book offers valuable insights. Use cases include building analytics projects for businesses or optimizing existing data workflows, making it a versatile resource for various career stages.
  • question: What skills can I expect to learn from this book?

    répondre: Readers will acquire a range of skills, including SQL proficiency, data modeling techniques, and how to implement dbt effectively in cloud environments. The book covers best practices in data infrastructure, which are crucial for creating efficient and dependable data platforms. Gaining these skills can dramatically improve your ability to turn raw data into actionable insights, making it a must-read for professionals involved in data-driven decision-making.
  • question: Is this book suitable for beginners in data engineering?

    répondre: Yes, 'Data Engineering With Dbt' is suitable for beginners as it starts with foundational concepts before advancing to practical applications. The author breaks down complex topics into digestible information, providing real-world examples and easy-to-follow guidance. This makes it a great resource for newcomers to data engineering who want to build confidence before tackling more complex projects or tools.
  • question: How does this book address data quality and integrity?

    répondre: The book emphasizes the importance of data quality, providing methodologies and frameworks for ensuring data accuracy and reliability. Readers will learn how to set up testing and validation processes using queries in dbt, which are vital for maintaining high standards in data engineering. Practical scenarios throughout the text offer insights into overcoming common data integrity challenges faced in various business contexts.
  • question: What technologies and tools are discussed in 'Data Engineering With Dbt'?

    répondre: The book primarily focuses on dbt, but also discusses complementary tools and technologies that enhance data engineering practices. You'll learn how to integrate cloud services, data warehouses, and other analytics solutions with dbt to build robust data platforms. This knowledge helps you create a cohesive data ecosystem tailored to your organization's needs, making it beneficial for companies planning to scale their data operations.
  • question: Can I apply the concepts from this book in real-world projects?

    répondre: Absolutely! The practical approach taken in 'Data Engineering With Dbt' ensures that concepts can be applied directly to real-world data projects. Each chapter includes case studies and examples that illustrate how the techniques and principles can be implemented in various business scenarios, enabling readers to easily transform theoretical knowledge into practical skills.
  • question: Are there any prerequisites for understanding the contents of this book?

    répondre: While it's beneficial to have a basic understanding of SQL and data structures, the book is designed to be accessible even to those with minimal experience. The foundational chapters set the stage for deeper insights into dbt and cloud-based platforms. Thus, readers can familiarize themselves with necessary concepts while progressively building more advanced skills throughout the book.
  • question: How does dbt compare with traditional data engineering tools?

    répondre: Dbt offers a modern approach to data engineering by focusing on the transformation phase of data workflows. Unlike traditional tools that often set up complex ETL processes, dbt simplifies the transformation process with an emphasis on modular SQL development, making it easier to maintain and scale. This modern approach helps organizations achieve faster development cycles and better collaboration among data teams.
  • question: Where can I buy 'Data Engineering With Dbt A Practical Guide To Building A Cloud-based, Pragmatic, And Dependable Data Platform With SQL'?

    répondre: You can purchase 'Data Engineering With Dbt A Practical Guide To Building A Cloud-based, Pragmatic, And Dependable Data Platform With SQL' at Ubuy in Algeria. Ubuy offers a range of options for accessing this book, making it convenient to find everything you need for your data engineering journey.

Electronic Data Interchange (EDI) Editorial Review

  • ubuy Algeria
  • ubuy Algeria
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  • ubuy Algeria

**** "Data Engineering with dbt: A Practical Guide to Building a Cloud-Based, Pragmatic, and Dependable Data Platform with SQL" is an impressive resource that successfully balances theory with practical application, making it a standout book for both aspiring and experienced data engineers. With its comprehensive and approachable structure, the book covers essential topics like SQL fundamentals, setting up a dbt Cloud environment, and various data modeling techniques, all with clarity and effectiveness. Roberto Zagni, the author, exhibits a deep understanding of data architecture, which transforms complex concepts into easily accessible knowledge through a series of real-world examples and practical exercises. The book’s strength lies in its focus on the modern data stack, using tools such as dbt, dbt Cloud, and Snowflake or BigQuery. Zagni offers step-by-step guidance on automating data pipelines, collaborating efficiently, and ensuring data quality, which are crucial skills in today's data-centric environment. Readers also appreciate the book's emphasis on maintainable code and agile practices, as well as insights into version control and testing, which are vital in building robust data platforms. It provides a variety of modeling techniques, including Vault, Mesh, Bill Inmon, and Kimball modeling, catering to the diverse needs of data professionals. While largely positive, some critiques suggest that certain sections could benefit from deeper explanations, especially concerning advanced data modeling and complex queries. Furthermore, readers noted a desire for more extensive coverage on data quality and testing practices within the dbt framework. Overall, "Data Engineering with dbt" is an invaluable addition to any data professional’s library. It equips readers with practical tools and techniques to excel in the rapidly evolving field of data engineering, making it an essential read for anyone pursuing success in this domain. **

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Avantages

  • Comprehensive coverage of both theory and practical applications.
  • Clear and concise explanations with real-world examples.
  • Strong focus on modern tools such as dbt, Snowflake, and BigQuery.
  • Emphasis on maintainable code and agile practices.
  • Introduces various data modeling techniques.
  • Hands-on learning experience with practical exercises.

Les inconvénients

  • Some sections may lack in-depth explanations for advanced topics.

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