A Common-Sense Guide to AI Engineering • Jay Wengrow & Kris Jenkins episode artwork

EPISODE · Apr 28, 2026 · 26 MIN

A Common-Sense Guide to AI Engineering • Jay Wengrow & Kris Jenkins

from GOTO - The Brightest Minds in Tech · host Jay Wengrow, Kris Jenkins & GOTO

This interview was recorded for the GOTO Book Club.http://gotopia.tech/bookclubJay Wengrow - Author of “A Common-Sense Guide to AI Engineering” & CEO of ActualizeKris Jenkins - Lifelong Computer Geek and Podcast HostRESOURCESJayhttps://x.com/jaywengrowhttps://github.com/jaywengrowhttps://www.linkedin.com/in/jaywengrowhttps://www.commonsensedev.comKrishttps://bsky.app/profile/krisajenkins.bsky.socialhttps://twitter.com/krisajenkinshttps://www.linkedin.com/in/krisjenkinshttps://github.com/krisajenkinshttp://blog.jenkster.comDESCRIPTIONIn this GOTO Book Club episode, host Kris Jenkins sits down with Jay Wengrow — founder of coding bootcamp Actualize and author of the bestselling Common-Sense Guide to Data Structures and Algorithms — to dig into his latest book, A Common-Sense Guide to AI Engineering. Jay demystifies how AI agents actually work: at heart, they're a clever hack where your code intercepts an LLM's text output, watches for special notation, and triggers real functions when it spots them. From there, the conversation expands into guardrails (regex, judge LLMs, and specialist ML models), multi-agent architectures for complex tasks, and a hands-on example of a 150-line podcast-generating app built entirely from scratch — no framework required.The real throughline is a pragmatic, sceptical take on the current AI tooling landscape. Jay argues that frameworks can lock you into patterns that haven't been proven yet, and that the field is too new to know which abstractions are genuinely worth having. His rule of thumb: reach for a framework only when it will do something meaningfully better than you can — not just faster. The book was deliberately written around fundamentals rather than specific tools, so it ages well even as the ecosystem moves at breakneck speed. The conclusion is refreshingly grounded: understand the LLM's inherent limitations, build the middle layer thoughtfully, and don't outsource your system prompts to anyone — or anything.RECOMMENDED BOOKSJay Wengrow • A Common-Sense Guide to AI Engineering • https://pragprog.com/titles/jwpaiengJay Wengrow • A Common-Sense Guide to Data Structures and Algorithms • https://amzn.to/4bPiTjdJay Wengrow • A Common-Sense Guide to Data Structures & Algorithms in Python • https://amzn.to/3PpwtlTJay Wengrow • A Common-Sense Guide to Data Structures and Algorithms in JavaScript • https://amzn.to/4dDSZBlBlueskyInstagramLinkedInFacebookCHANNEL MEMBERSHIP BONUSJoin this channel to get early access to videos & other perks:https://www.youtube.com/channel/UCs_tLP3AiwYKwdUHpltJPuA/joinLooking for a unique learning experience?Attend the next GOTO conference near you! Get your ticket: gotopia.techSUBSCRIBE TO OUR YOUTUBE CHANNEL - new videos posted daily!

Episode metadata supplied by the publisher feed · Published Apr 28, 2026

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This interview was recorded for the GOTO Book Club. http://gotopia.tech/bookclub Jay Wengrow - Author of “A Common-Sense Guide to AI Engineering” & CEO of Actualize Kris Jenkins - Lifelong Computer Geek and Podcast Host RESOURCES Jay https://x.com/jaywengrow https://github.com/jaywengrow https://www.linkedin.com/in/jaywengrow https://www.commonsensedev.com Kris https://bsky.app/profile/krisajenkins.bsky.social https://twitter.com/krisajenkins https://www.linkedin.com/in/krisjenkins htt...

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A Common-Sense Guide to AI Engineering • Jay Wengrow & Kris Jenkins

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