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The Craft of Post-Training (A Practical Guide for AI Engineers and Developers)

List Price: $79.99
SKU:
9781718505209
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25 unit(s)
Expected release date is Sep 1st 2026
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  • Product Details

    Author:
    Chris Von Csefalvay
    Format:
    Paperback
    Pages:
    416
    Publisher:
    No Starch Press (September 1, 2026)
    Imprint:
    No Starch Press
    Release Date:
    September 1, 2026
    Language:
    English
    Audience:
    General/trade
    ISBN-13:
    9781718505209
    ISBN-10:
    1718505205
    Weight:
    28oz
    Dimensions:
    7" x 9.25" x 0.95"
    File:
    RandomHouse-PRH_Book_Company_PRH_PRT_Onix_delta_active_D20260724T232135_157302575-20260724.xml
    Folder:
    RandomHouse
    List Price:
    $79.99
    Country of Origin:
    United States
    Pub Discount:
    65
    Case Pack:
    18
    As low as:
    $61.59
    Publisher Identifier:
    P-RH
    Discount Code:
    A
    QuickShip:
    Yes
  • Overview

    Capable by default. Reliable by design.

    A pre-trained model has read most of the internet—and can be trusted with almost none of it. Post-training is the work that changes that: where you take a raw, general model and shape it into something that behaves, follows instructions, refuses what it shouldn’t do, and handles the specific job you need. It’s the human hand on the machine, and the part almost no one explains.

    Chris von Csefalvay has spent his career building production ML systems in industry, from clinical language to legal text. In The Craft of Post-Training, he shows you the decisions behind every technique: when to fine-tune and when not to, why a model quietly gets worse, and which method fits the constraint you’re actually under. The math is here, because knowing why a technique works is what lets you debug it when it breaks.

    You’ll know how to:
    • Choose among the main post-training methods, from SFT and RLHF to DPO, KTO, and GRPO, well enough to fix failures instead of guessing
    • Adapt a model to your domain without catastrophic forgetting—the tendency of a network to abruptly overwrite what it already knew when you train it on something new
    • Run larger models with the memory you have by using new quantization
    • Train agentic systems to act reliably under adversarial pressure
    • Measure what matters in your deployment, beyond standard benchmarks

    When you’ve used LLMs long enough, you start to wonder what was done to make them behave. The secret is in the post-training that shaped them. The Craft of Post-Training shows you how that’s done.