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Data Engineering with ETL and BI Pipelines. A Hands-On Guide to Building Scalable, Production-Ready Data Workflows for Analytics and Reporting (en Inglés)
Victor Cipher (Autor) · Independently published · Tapa Blanda
Quedan 100 unidades
$ 31.62In today's data-driven world, organizations generate massive amounts of data every second. Yet raw data alone has little value unless it can be collected, transformed, organized, and delivered in a format that supports meaningful analysis and decision-making. This is where effective data engineering becomes essential.
Data Engineering with ETL and BI Pipelines: A Hands-On Guide to Building Scalable, Production-Ready Data Workflows for Analytics and Reporting is a practical guide designed to help you understand, design, and implement robust data pipelines that power modern analytics systems.
Rather than focusing only on theory, this book emphasizes hands-on learning and real-world implementation, guiding you through the principles and techniques used to build scalable and reliable data workflows. Whether you are an aspiring data engineer, data analyst, developer, or technical professional working with data systems, this book provides the practical knowledge needed to transform raw data into reliable, structured information that organizations can use to make smarter decisions.
Modern companies rely on efficient pipelines to move data from multiple sources into centralized platforms where it can be analyzed, visualized, and used to guide strategy. Poorly designed workflows often lead to inconsistent datasets, unreliable reports, and slow analytics processes. This book shows you how to design systems that ensure data flows smoothly from raw sources to actionable insights.
What You Will LearnInside this book, you will discover how to:
• Design and build end-to-end ETL pipelines that efficiently extract, transform, and load data
• Create scalable data workflows capable of handling growing data volumes
• Structure and organize datasets for analytics and reporting systems
• Build production-ready pipelines with monitoring, validation, and error handling
• Improve data quality and reliability through validation and transformation techniques
• Automate data workflows for consistent and efficient processing
• Understand how data engineering supports business intelligence and analytics
• Deliver clean, structured datasets for dashboards, reports, and decision-making
These skills are essential for building the infrastructure that powers modern data-driven organizations.
Build Reliable Data SystemsMany technical resources focus on simple examples that work only in controlled environments. This book goes further by showing you how to design pipelines that operate reliably in real production environments.
You will learn how to address practical challenges such as handling large datasets, managing pipeline failures, ensuring data accuracy, and automating recurring data processes. By applying these strategies, you can build workflows that are not only functional but also robust, scalable, and maintainable.
Who This Book Is ForThis book is ideal for:
• Aspiring Data Engineers
• Data Analysts who want to understand pipeline architecture
• Software Engineers working with data platforms
• Business Intelligence professionals
• Technical professionals transitioning into data engineering
By the end of this book, you will understand how to design scalable ETL pipelines, organize data for analytics, and build production-ready workflows that transform raw data into meaningful insights.
If you want to master the foundations of modern data infrastructure and learn how to build scalable data pipelines that power analytics and reporting, this book provides the knowledge and practical guidance to help you succeed.
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