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Digital Audiobook
Large Language Models: The Hard Parts by Jonathan K. Regenstein, Jr.

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Large Language Models: The Hard Parts

Narrator
Rich Miller
Publisher
Ascent Audio
Publish Date
15 September 2026
Run Time
8 hours 39 minutes
Format
Audiobook
$13.95

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What to expect

Large language models (LLMs) have transformed natural language processing, but deploying them in applications introduces numerous technical challenges. Large Language Models: The Hard Parts offers a clear, practical examination of the limitations developers and AI engineers face when building LLM-based applications. With a focus on implementation pitfalls (not just capabilities), this book provides actionable strategies supported by reproducible Python code and open source tools.

Listeners will learn how to navigate key obstacles in application evaluation, input management, testing, and safety. Designed for builders and technical product leads, this guide emphasizes practical solutions to real-world problems and promotes a grounded understanding of LLM constraints and trade-offs.

Discover how to design testing and evaluation strategies for nondeterministic systems; manage context, RAG, and long-context retrieval; address output inconsistency and structural unreliability; implement safety and content moderation frameworks; explore alignment challenges and mitigation techniques; and leverage open source models locally.

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Details

Author
Jonathan K. Regenstein, Jr.
Narrator
Rich Miller
Duration
8 hours 39 minutes
Release Date
15 September 2026
ISBN
9781663761255
Format
Audiobook
Publisher
Ascent Audio
Genre
Natural language and machine translation, Computer science, Computer programming / software engineering

Synopsis

Large language models (LLMs) have transformed natural language processing, but deploying them in applications introduces numerous technical challenges. Large Language Models: The Hard Parts offers a clear, practical examination of the limitations developers and AI engineers face when building LLM-based applications. With a focus on implementation pitfalls (not just capabilities), this book provides actionable strategies supported by reproducible Python code and open source tools.Listeners will learn how to navigate key obstacles in application evaluation, input management, testing, and safety. Designed for builders and technical product leads, this guide emphasizes practical solutions to real-world problems and promotes a grounded understanding of LLM constraints and trade-offs.Discover how to design testing and evaluation strategies for nondeterministic systems; manage context, RAG, and long-context retrieval; address output inconsistency and structural unreliability; implement safety and content moderation frameworks; explore alignment challenges and mitigation techniques; and leverage open source models locally.

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