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Zephyr for Developers: Designing, Fine-Tuning, and Deploying Open-Weight LLMs

by Yuan Li
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Current price ₹1,705.00
Original price ₹1,883.00
Original price ₹1,883.00
Original price ₹1,883.00
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₹1,705.00
Current price ₹1,705.00

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Book cover type: Paperback
  • ISBN13: 9798267736275
  • Binding: Paperback
  • Subject: N/A
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Publication Date:
  • Pages: 218
  • Original Price: GBP 14.88
  • Language: English
  • Edition: N/A
  • Item Weight: 386 grams
  • BISAC Subject(s): Software Development & Engineering / General

Zephyr for Developers
Designing, Fine-Tuning, and Deploying Open-Weight LLMs

A practical guide to building efficient AI assistants and real-world applications.
Closed models like GPT-4 and Claude are powerful but they're expensive, locked down, and out of your control. Zephyr changes the game.
Built on the efficient Mistral-7B base, Zephyr is an open-weight, instruction-tuned model that you can run, fine-tune, and deploy on your own terms. For developers, AI engineers, and data scientists, this book is the practical guide to unlocking Zephyr's potential in real-world applications.
What You Will Learn
Understand Zephyr's architecture and why it matters for open-weight AI.
Fine-tune Zephyr with LoRA, QLoRA, and advanced alignment methods.
Compress and optimize with quantization, pruning, and mixed precision.
Deploy Zephyr to cloud servers, FastAPI endpoints, and even edge devices.
Build agentic workflows with LangChain, LangGraph, and Claude subagents.
Connect Zephyr to vector databases and knowledge graphs for Retrieval-Augmented Generation (RAG).
Apply best practices for observability, debugging, and scaling.
Secure your deployments with guardrails, privacy, and compliance strategies.
Who This Book Is For
Developers building efficient assistants and apps with open-weight LLMs
AI engineers designing scalable agentic workflows
Data scientists exploring fine-tuning, quantization, and RAG pipelines
Researchers looking to understand the role of Zephyr in the open-weight AI ecosystem
Inside the Book
Clear explanations of Zephyr's design and tradeoffs
Step-by-step fine-tuning and deployment workflows with runnable code
Real-world case studies: customer support bots, research summarization, and multi-agent pipelines
Future directions for Zephyr and open-weight AI
If you want to move beyond API-bound models and own your AI stack, this book shows you how to design, fine-tune, and deploy Zephyr into production.

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