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Food for Agile Thought 549: AI in Product 2026, Makers Manifesto, AI POM, Open Knowledge Format

Also: The Terror of Harmony, AI4Agile v3, Flow Debt, AI’s Brokenomics

Stefan Wolpers in Food for Agile Thought · 2026-06-19 12:29 · 50 claps · 8.8 min read paywalled
#artificial-intelligence #agile #leadership #product-management #innovation
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Food for Agile Thought 549: AI in Product 2026, Makers Manifesto, AI POM, Open Knowledge Format

TL; DR: AI in Product 2026 — Food for Agile Thought #549

Welcome to the 549th edition of the Food for Agile Thought newsletter, shared with 35,498 peers.

This week, Melissa Perri, Product Circle, and the Product Institute show AI coding tools spreading faster than stronger operating models, while Elena Verna sees cheaper software creation opening a Mom-and-Pop SaaS lane for domain experts. Petra Wille - loomista counters AI possibilities with accountable product principles, and Sam McVeety and Amir Hormati tackle agent-ready context. Also, Isabel Juniewicz and Ed Zitron question whether increasing hyperscaler spending and the economics of generative AI can sustain the rush, or bubble?

Next, Janna Bastow warns that Slack loses product feedback once channels move on, and Sarah Guo argues that AI shifts durable advantage toward private data, judgment, and trust. Aakash Gupta and Rohan Varma push the logic further, describing AI-native teams that build before they coordinate as the AI way, while Matthew Hodgson adds that enterprises need persistent funding and governance to make AI product operating models work. Then, Gregor Ojstersek shows that top engineering teams are already reshaping structures around AI.

Lastly, Mark Graban warns that tone policing in teams drives bad news underground, while Barry O'Reilly argues that AI raises the premium on visible, codified judgment that requires transparency, not enforced harmony. Johanna Rothman and Sonya Siderova shift the focus from faster tasks to slower systems, where wait times and flow debt shape delivery. Finally, Matteo Tittarelli extends that logic to GTM, where context, skills, orchestration, and integrations must compound across cycles.

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Did you miss the previous Food for Agile Thought issue 548?

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🏆 The Tip of the Week: AI in Product 2026

📖 Melissa Perri: State of AI in Product 2026

Product Circle and Product Institute find that while 87.7% of product organizations use AI coding assistants, only 36.1% report stronger operating models, suggesting tool adoption far outpaces the organizational changes needed to benefit from it.

Source: 📖 State of AI in Product 2026

Author: Melissa Perri

🎯 Product

Elena Verna: The Mom-and-Pop SaaS era has arrived

Elena Verna believes that AI-driven cost collapse in software creation unlocks a “Mom-and-Pop SaaS” era, where domain experts, not just developers, turn decades of professional experience into niche software products.

Source: The Mom-and-Pop SaaS era has arrived

Author: Elena Verna

Petra Wille: On helping write the Makers Manifesto

Petra Wille describes co-creating the Makers Manifesto, a set of principles for AI-era product work centered on purpose over possibility, learning loops over launch plans, and human accountability over automation.

Source: On helping write the Makers Manifesto

Author: Petra Wille

Janna Bastow (via ProdPad): Why Your Feedback is Stuck in Slack

Janna Bastow proposes that Slack captures feedback well but cannot retain it. Without a system that links feedback to customers, problems, and plans, valuable product signals vanish as channels scroll past.

Source: ProdPad: Why Your Feedback is Stuck in Slack

Author: Janna Bastow

(via Zen Ex Machina): AI Product Operating Model: Why CIOs Need One

Matthew Hodgson suggests that enterprise AI fails at scale because organizations fund it as a project with an end state, when it needs persistent teams, continuous funding, and outcome-based governance.

Source:Zen Ex Machina: AI Product Operating Model: Why CIOs Need One

Aakash Gupta: The AI Product Operating Model

Tricky: Aakash Gupta and Rohan Varma propose that AI-native companies invert traditional product development. When building becomes cheap, you build first and evaluate second, collapsing most coordination overhead and process layers.

Source: The AI Product Operating Model

Author: Aakash Gupta

🧠 Artificial Intelligence

(via Google Cloud Blog): How the Open Knowledge Format can improve data sharing

Sam McVeety and Amir Hormati introduce the Open Knowledge Format. This vendor-neutral, markdown-based specification standardizes how organizations package internal context so AI agents can reliably consume it across tools.

Source: Google Cloud Blog: How the Open Knowledge Format can improve data sharing

Gregor Ojstersek: What the Top 1% of Engineering Teams Do Differently with AI

Gregor Ojstersek shares Weave’s data on what top 1% engineering teams do differently with AI: flatter orgs, smaller teams, spec reviews over code reviews, higher AI spending with better cost efficiency, and more deployments without increased bug rates.

Source: What the Top 1% of Engineering Teams Do Differently with AI

Author: Gregor Ojstersek

(via Epoch AI): Hyperscaler Capex to Exceed Cash Flow by Q3 2026

Isabel Juniewicz reports that combined AI capital spending by the five major hyperscalers is set to surpass their operating cash flow by Q3 2026, forcing a shift to external financing.

Source: Epoch AI: Hyperscaler Capex to Exceed Cash Flow by Q3 2026

Ed Zitron: AI’s Brokenomics

Ed Zitron believes generative AI lacks a viable business model, noting that enterprise customers revolted against token-based billing within months, forcing OpenAI and Anthropic to consider cuts on unprofitable services.

Source: AI’s Brokenomics

Author: Ed Zitron

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The job market’s shifting. Agile roles are under pressure. AI tools are everywhere. But here’s the truth: the Agile professionals who learn how to work with AI, not against it, will be the ones leading the next wave of high-impact teams. Therefore, Stefan created the AI4Agile BootCamp.

So, become the professional recruiters‘ first call for „AI‑powered Agile.“ Be among the first to master practical AI applications for Scrum Masters, Agile Coaches, Product Owners, Product Managers, and Project Managers. The AI4Agile BootCamp is in English.

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Customer Voice: “Last week, I finished the 𝗔𝗜 𝗳𝗼𝗿 𝗔𝗴𝗶𝗹𝗲 𝗣𝗿𝗮𝗰𝘁𝗶𝘁𝗶𝗼𝗻𝗲𝗿𝘀 course. And I’m mutating… It started on the train. I was scrolling through my messages, half-distracted, when a newsletter from Stefan Wolpers popped up. Stefan, a deep thinker with a hands-on attitude, was launching a new course. A pilot cohort. The mission: explore how AI can actually support us as agile practitioners. I couldn’t resist. I tapped: “𝘚𝘪𝘨𝘯 𝘶𝘱”. What followed were four bi-weekly sessions. Four intense afternoons. Full of exploration, experimentation, and practice. […] At the beginning, Stefan said that 𝘫𝘶𝘴𝘵 𝘴𝘪𝘨𝘯𝘪𝘯𝘨 𝘶𝘱 𝘢𝘭𝘳𝘦𝘢𝘥𝘺 𝘱𝘶𝘵𝘴 𝘶𝘴 𝘢𝘩𝘦𝘢𝘥 𝘰𝘧 𝘮𝘢𝘯𝘺 𝘱𝘳𝘢𝘤𝘵𝘪𝘵𝘪𝘰𝘯𝘦𝘳𝘴. That sounded like a big statement. But somewhere along the way, I noticed a shift… an emerging superpower in how I approach my tasks with AI.⚡And now, as my AI-mutation continues, I catch myself wondering: 💭 𝘏𝘰𝘸 𝘥𝘰 𝘐 𝘶𝘴𝘦 𝘈𝘐 𝘵𝘰 𝘴𝘢𝘷𝘦 𝘵𝘩𝘦 𝘢𝘨𝘪𝘭𝘦 𝘸𝘰𝘳𝘭𝘥?” (Ilya Zaytsev, Leading Agility at HUGO BOSS.)

➿ Agile & Leadership

Barry O’Reilly: How Does Defining Judgment System Improve Leadership Decision-Making?

Barry O’Reilly proposes that the scarcest resource in the AI era is not information but human judgment, and that leaders must expose, refine, and codify how they actually make decisions.

Source: How Does Defining Judgment System Improve Leadership Decision-Making?

Author: Barry O’Reilly

Mark Graban: ’No Debbie Downers’ and the Hidden Cost of a Positive Team

Mark Graban suggests that tone filters like “no Debbie Downers” quietly erode psychological safety. A team where nobody brings bad news is not problem-free; the problems have just learned to hide.

Source: ’No Debbie Downers’ and the Hidden Cost of a Positive Team

Author: Mark Graban

Sarah Guo: The Untrainable

Sarah Guo proposes that as AI commoditizes measurable work, lasting value shifts to “untrainable” territory: private data, firm-specific judgment, and trust that no model can absorb, no matter how capable it becomes.

Source: The Untrainable

Author: Sarah Guo

📯 The AI Delegation Lifecycle: Your Team Has AI Outputs. Where Are the Decisions?

Your team ships AI outputs that nobody fully trusts; you needed to be quick, and “dirty” tagged along. Too bad, that that ungoverned automation becomes AI debt when a stakeholder asks who owns it. But do not despair: The AI Delegation Lifecycle turns skills you already use into six decisions you can apply this week to govern that work and prove it, audit-ready and suited for agent harnesses.

Learn more: The AI Delegation Lifecycle: Your Team Has AI Outputs. Where Are the Decisions?

🛠 Concepts, Practices, Tools & Measuring

(via Nave Blog): Flow Debt: The Hidden Cost of Expediting Work

Sonya Siderova explains that every expedited task borrows cycle time from the rest of your work in progress, creating hidden “flow debt” that quietly erodes predictability before any forecast reveals it.

Source: Nave Blog: Flow Debt: The Hidden Cost of Expediting Work

Johanna Rothman: How to Use Value Stream Maps to See Where AI Creates Bottlenecks, Part 1

Johanna Rothman uses value stream maps to show that AI speeds up individual work but barely cuts cycle time because the real bottlenecks are wait times, not typing speed.

Source: How to Use Value Stream Maps to See Where AI Creates Bottlenecks, Part 1

Author: Johanna Rothman

(via Kyle Poyar): How to build your AI GTM system

Matteo Tittarelli proposes a four-layer framework for AI-powered GTM systems: context, skills, orchestration, and integrations. His key point: without a persistent context spine, AI output never compounds across cycles.

Source: How to build your AI GTM system

Author: Kyle Poyar

📅 Training Classes, Meetups & Events 2026

Upcoming classes and events:

👉 See all upcoming classes here

🗞️ The Previous Food for Agile Thought Edition

Food for Agile Thought 548: ROT (Return on Tokens), Product Team Health, Engineers & PMs, AI Treadmill.

📺 Join 6,000-plus Agile Peers on YouTube

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Food for Agile Thought 549: AI in Product 2026, Makers Manifesto, AI POM, Open Knowledge Format was first published on Age-of-Product.com.


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