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The AI Engineering Bootcamp: Build, Ship, Share (Not yet published)

AUTHOR Alexiuk, Chris; Loughnane, Greg
PUBLISHER Wiley (10/06/2026)
PRODUCT TYPE Paperback (Paperback)

Description

An up-to-date and hands-on tutorial for building production-grade LLM applications

In The AI Engineering Bootcamp: Build, Ship, Share, AI Makerspace co-founders "Dr. Greg" Loughnane and Chris "The Wiz" Alexiuk guide the reader through the foundational concepts and code needed to build production-grade Large Language Model (LLM) applications using leading open-source tooling. The book explains the four primary design patterns of generative AI--prompt engineering, Retrieval Augmented Generation (RAG), fine-tuning, and agentic reasoning--and how to leverage them as first principles to build scalable LLM applications that are high-performance and efficient.

You'll find classroom-tested lessons that offer immediate insights into building LLM applications, as well as example projects to give you hands-on experience that can be immediately applied within our company or with your clients today. The AI Engineering Bootcamp provides everything you need, from your initial AI-assisted Interactive Development Environment (IDE) set up and first deployment to the boilerplate Python code you need to prototype LLM, RAG, agent, and multi-agent applications. The book also covers how to prepare your prototypes for production by setting up open-source LLM and embedding model endpoints, leveraging caching for prompts and embeddings, what you need to host and deploy your application on premise, and more! Of course, the book also includes a discussion of how to leverage emerging protocols, including Model Context Protocol (MCP) and Agent2Agent protocol, which have taken the agent landscape by storm in 2025. While the authors provide an opinionated view of the best-practice open-source tooling based on the current landscape, throughout this book, you will avoid vendor lock-in to any specific Cloud Service Provider (e.g., Amazon Web Services, Google Cloud Platform, or Microsoft Azure).

You'll also discover:

  • An authoritative examination of the core design pattern of in-context learning that underlies all modern AI apps and AI development
  • Hands-on tutorials offering practical know-how into building an LLM app in the real-world
  • A list of essential definitions and vocabulary that frequently come up in LLM software development

Perfect for software engineers and data scientists who aim to become AI Engineers, The AI Engineering Bootcamp is a can't-miss resource for practitioners who want to build and ship production-grade LLM applications. Conceptually, this book can also be quite useful for technical product managers or AI Engineering leaders aiming to guide their teams' development efforts.

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Product Format
Product Details
ISBN-13: 9781394324057
ISBN-10: 1394324057
Binding: Paperback or Softback (Trade Paperback (Us))
Content Language: English
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Carton Quantity: 0
Country of Origin: US
Subject Information
BISAC Categories
Technology & Engineering | Construction - General
Technology & Engineering | Artificial Intelligence - Natural Language Processing
Technology & Engineering | Computer Engineering
Descriptions, Reviews, Etc.
publisher marketing

An up-to-date and hands-on tutorial for building production-grade LLM applications

In The AI Engineering Bootcamp: Build, Ship, Share, AI Makerspace co-founders "Dr. Greg" Loughnane and Chris "The Wiz" Alexiuk guide the reader through the foundational concepts and code needed to build production-grade Large Language Model (LLM) applications using leading open-source tooling. The book explains the four primary design patterns of generative AI--prompt engineering, Retrieval Augmented Generation (RAG), fine-tuning, and agentic reasoning--and how to leverage them as first principles to build scalable LLM applications that are high-performance and efficient.

You'll find classroom-tested lessons that offer immediate insights into building LLM applications, as well as example projects to give you hands-on experience that can be immediately applied within our company or with your clients today. The AI Engineering Bootcamp provides everything you need, from your initial AI-assisted Interactive Development Environment (IDE) set up and first deployment to the boilerplate Python code you need to prototype LLM, RAG, agent, and multi-agent applications. The book also covers how to prepare your prototypes for production by setting up open-source LLM and embedding model endpoints, leveraging caching for prompts and embeddings, what you need to host and deploy your application on premise, and more! Of course, the book also includes a discussion of how to leverage emerging protocols, including Model Context Protocol (MCP) and Agent2Agent protocol, which have taken the agent landscape by storm in 2025. While the authors provide an opinionated view of the best-practice open-source tooling based on the current landscape, throughout this book, you will avoid vendor lock-in to any specific Cloud Service Provider (e.g., Amazon Web Services, Google Cloud Platform, or Microsoft Azure).

You'll also discover:

  • An authoritative examination of the core design pattern of in-context learning that underlies all modern AI apps and AI development
  • Hands-on tutorials offering practical know-how into building an LLM app in the real-world
  • A list of essential definitions and vocabulary that frequently come up in LLM software development

Perfect for software engineers and data scientists who aim to become AI Engineers, The AI Engineering Bootcamp is a can't-miss resource for practitioners who want to build and ship production-grade LLM applications. Conceptually, this book can also be quite useful for technical product managers or AI Engineering leaders aiming to guide their teams' development efforts.

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Paperback