Context Engineering with DSPy : Self-Optimizing Prompt Pipelines for Building Reliable AI Agents
by
Mike Taylor
Book Details
Format
Paperback / Softback
ISBN-10
834167126Y
ISBN-13
9798341671263
Publisher
O'Reilly Media
Imprint
O'Reilly Media
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Nov 30th, 2026
Print length
300 Pages
Product Classification:
Natural language & machine translationNatural language and machine translation
Ksh 11,500.00
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Mike Taylor explains DSPy in a clear, approachable style, showing how its modular structure, portable programs, and built-in optimizers help teams move beyond guesswork. Through real examples and step-by-step guidance, you'll learn how DSPy's signatures, modules, datasets, and metrics work together to solve context engineering problems.
AI agents need the right context at the right time to do a good job. Too much input increases cost and harms accuracy, while too little causes instability and hallucinations. Context Engineering with DSPy introduces a practical, evaluation-driven way to design AI systems that remain reliable, predictable, and easy to maintain as they grow. AI engineer and educator Mike Taylor explains DSPy in a clear, approachable style, showing how its modular structure, portable programs, and built-in optimizers help teams move beyond guesswork. Through real examples and step-by-step guidance, you'll learn how DSPy's signatures, modules, datasets, and metrics work together to solve context engineering problems that evolve as models change and workloads scale. This book supports AI engineers, data scientists, machine learning practitioners, and software developers building AI agents, retrieval-augmented generation (RAG) systems, and multistep reasoning workflows that hold up in production. Understand the core ideas behind context engineering and why they matterStructure LLM pipelines with DSPy's maintainable, reusable componentsApply evaluation-driven optimizers like GEPA and MIPROv2 for measurable improvementsCreate reproducible RAG and agentic workflows with clear metricsDevelop AI systems that stay robust across providers, model updates, and real-world constraints
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