Advanced Analytics Engineering for AI Systems (Paperback)
Idioma: inglés
Editorial: Independently Published, 2026
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- Nuevo

Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de AmericaGrand Eagle Retail
Vendedor de AbeBooks desde el 12 de octubre de 2005
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EUR 34,33
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Paperback. Advanced Analytics Engineering for AI Systems: Architecting Reliable Data Pipelines, Models, and Metrics for Production IntelligenceModern AI systems don't fail because of models.They fail because of data.Behind every successful AI product is a carefully engineered system that ensures data is accurate, consistent, timely, and trustworthy. This is where analytics engineering becomes the foundation of production intelligence.This book is your complete, practical guide to building that foundation.Advanced Analytics Engineering for AI Systems takes you beyond theory and into the real structure of modern data systems. You will learn how raw data is transformed into reliable pipelines, how analytical models are designed for clarity and performance, and how metrics are defined so that every number in your system means exactly what it should, every time.The focus is not on isolated tools or surface-level concepts. Instead, this book teaches you how to think in systems. You will understand how data flows from ingestion to transformation, how it supports machine learning, and how everything is orchestrated, monitored, and governed in production environments.As you progress, you will work through real-world scenarios that reflect the challenges faced in modern organizations. You will learn how to design ingestion pipelines that handle incomplete and evolving data, how to build deterministic transformations that produce consistent results, and how to structure data models that scale across teams and use cases.You will see how metrics are engineered as stable system components, ensuring that dashboards, reports, and models all rely on the same definitions. You will understand how feature pipelines are built to support machine learning without introducing inconsistencies between training and production.The book also guides you through workflow orchestration, showing how to coordinate complex pipelines and ensure reliable execution. You will learn how to monitor data freshness, detect anomalies, and maintain data quality over time. As your system grows, you will explore how to scale performance, manage costs, and support multiple teams working on the same platform.Finally, you will gain a clear understanding of governance, security, and long-term reliability. You will learn how to manage change without breaking systems, how to document and discover data assets, and how to build platforms that are both reliable and auditable.By the end of this book, you will not just understand analytics engineering, you will be able to design and build production-grade systems that support real-world AI applications.This book is written for data engineers, analytics engineers, machine learning engineers, and developers who want to move beyond fragmented workflows and build systems that are structured, scalable, and trusted.If you are serious about building AI systems that actually work in production, this is where you start.Take control of your data systems. Build with clarity. Engineer for reliability.Get your copy now and start designing analytics platforms that power intelligent, production-ready systems. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…
N° de ref. del artículo 9798249232924
- Título
- Advanced Analytics Engineering for AI Systems (Paperback)
- Autor
- Craig Lanford
- Editorial
- Independently Published
- Año de publicación
- 2026
- Estado
- new
- Encuadernación
- Paperback
- Idioma
- inglés
- ISBN 13
- 9798249232924
Modern AI systems don’t fail because of models.
They fail because of data.
Behind every successful AI product is a carefully engineered system that ensures data is accurate, consistent, timely, and trustworthy. This is where analytics engineering becomes the foundation of production intelligence.
This book is your complete, practical guide to building that foundation.
Advanced Analytics Engineering for AI Systems takes you beyond theory and into the real structure of modern data systems. You will learn how raw data is transformed into reliable pipelines, how analytical models are designed for clarity and performance, and how metrics are defined so that every number in your system means exactly what it should, every time.
The focus is not on isolated tools or surface-level concepts. Instead, this book teaches you how to think in systems. You will understand how data flows from ingestion to transformation, how it supports machine learning, and how everything is orchestrated, monitored, and governed in production environments.
As you progress, you will work through real-world scenarios that reflect the challenges faced in modern organizations. You will learn how to design ingestion pipelines that handle incomplete and evolving data, how to build deterministic transformations that produce consistent results, and how to structure data models that scale across teams and use cases.
You will see how metrics are engineered as stable system components, ensuring that dashboards, reports, and models all rely on the same definitions. You will understand how feature pipelines are built to support machine learning without introducing inconsistencies between training and production.
The book also guides you through workflow orchestration, showing how to coordinate complex pipelines and ensure reliable execution. You will learn how to monitor data freshness, detect anomalies, and maintain data quality over time. As your system grows, you will explore how to scale performance, manage costs, and support multiple teams working on the same platform.
Finally, you will gain a clear understanding of governance, security, and long-term reliability. You will learn how to manage change without breaking systems, how to document and discover data assets, and how to build platforms that are both reliable and auditable.
By the end of this book, you will not just understand analytics engineering, you will be able to design and build production-grade systems that support real-world AI applications.
This book is written for data engineers, analytics engineers, machine learning engineers, and developers who want to move beyond fragmented workflows and build systems that are structured, scalable, and trusted.
If you are serious about building AI systems that actually work in production, this is where you start.
Take control of your data systems. Build with clarity. Engineer for reliability.
Get your copy now and start designing analytics platforms that power intelligent, production-ready systems.
“Sinopsis” puede pertenecer a otra edición de este título.
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