PodcastsRank #2536
Artwork for Invisible Machines podcast by UX Magazine

Invisible Machines podcast by UX Magazine

TechnologyPodcastsBusinessENukraineDaily or near-daily
4.6 / 5
"The enemy of nonsense in AI"   |  The #1 podcast about agentic AI Join great conversations with experts about the intersections between AI, product design, technology and business. The bestselling authors of Age Of Invisible Machines are joined by other luminaries to continue the conversations that began in their book—the first bestseller about agentic AI. With a newly revised and updated Second Edition that hit the shelves in spring of 2025, Robb Wilson (CEO and Co-Founder of OneReach.ai) and Josh Tyson expand their explorations of disruptive technology with fellow AI insiders, experts, and luminaries working in adjacent realms.
Top 5.1% by pitch volume (Rank #2536 of 50,000)Data updated Feb 10, 2026

Key Facts

Publishes
Daily or near-daily
Episodes
110
Founded
N/A
Category
Technology
Number of listeners
Private
Hidden on public pages

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Public snapshot
Audience: Under 4K / month
Canonical: https://podpitch.com/podcasts/invisible-machines-podcast-by-ux-magazine
Cadence: Active monthly
Reply rate: 35%+

Latest Episodes

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Why Canonical Knowledge Is the Foundation for Enterprise AI ft Joe DosSantos, VP at Workday

Thu Jan 29 2026

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Before enterprises can deploy AI agents that actually work, they need something most organizations don't have: a single, authoritative source of truth. Joe DosSantos, Workday’s VP of Enterprise Data and Analytics, joins Robb and Josh for a wide-ranging conversation about canonical knowledge, the semantic layer, and why data governance, a concept from the 1990s, has suddenly become essential for AI deployment. Large language models are predictive engines modeled to anticipate what users probably likely mean. For B2C applications where multiple interpretations are acceptable, this works fine. But enterprises need deterministic truth, not probabilistic guesses. The trio outline a solution in three layers: establishing canonical knowledge, building a semantic layer to translate between human definitions and machine-readable formats like YAML, and using LLMs as an interface to deterministic back-end systems. For leaders evaluating AI investments, this episode clarifies what actually needs to be built before agents can deliver value: not flashy use cases, but the unglamorous, essential work of data governance and semantic translation. ---------- Support our show by supporting our sponsors! This episode is supported by OneReach.ai Forged over a decade of R&D and proven in 10,000+ deployments, OneReach.ai’s GSX is the first complete AI agent runtime environment (circa 2019) — a hardened AI agent architecture for enterprise control and scale. Backed by UC Berkeley, recognized by Gartner, and trusted across highly regulated industries, including healthcare, finance, government and telecommunications. A complete system for accelerating AI adoption — design, train, test, deploy, monitor, and orchestrate neurosymbolic applications (agents). - Use any AI models - Build and deploy intelligent agents fast - Create guardrails for organizational alignment - Enterprise-grade security and governance Request free prototype: https://onereach.ai/prototype/utm_source=soundcloud&utm_medium=social&utm_campaign=podcast_s7e2&utm_content=1 ---------- The revised and significantly updated second edition of our bestselling book about succeeding with AI agents, Age of Invisible Machines, is available everywhere: Amazon — https://bit.ly/4hwX0a5 Chapters - 0:00 – Welcome to Invisible Machines 1:28 – Why AI Agents Fail Without a Source of Truth 2:34 – Canonical Knowledge Is More Than Feeding Data to an LLM 3:16 – LLMs Are Good at Language, Not Truth 4:16 – The Convergence of Governance and Generative AI 5:48 – Implicit vs Explicit Knowledge Explained 7:31 – Why Accuracy Breaks Down in AI 8:37 – The Real Launchpad for AI: Get the Facts Right 9:42 – Alignment, Not Intelligence, Is the Hard Problem 10:53 – Semantic Layers: Teaching Machines Meaning 12:38 – LLMs Are Interfaces, Not Systems 14:26 – Routing Questions: Inference vs Deterministic Answers 16:21 – Canonical Knowledge Requires Human Ownership 18:16 – There Is No ROI for Data (It’s the Foundation) 23:59 – From Use Cases to Systems Thinking Episode Credits: Robb Wilson - Host Josh Tyson - Host Elias Parker - Executive Producer Vishal Menon - Producer Maksym Zlydar - Audio/Video Editor Mykhailo Lytvynov - Audio/Video Editor Eugen Petruk - Graphic Design Alla Slesarenko - Copy Vira Prykhodko - Web Development #InvisibleMachines #Podcast #TechPodcast #AIPodcast #AI #AgenticAI #AIAgents #DigitalTransformation #AIReadiness #AIDeployment #AISoftware #AITransformation #AIAdoption #AIProjects #EnterpriseAI #CanonicalKnowledge #DataGovernance #SourceOfTruth #AIArchitecture #DeterministicAI

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Before enterprises can deploy AI agents that actually work, they need something most organizations don't have: a single, authoritative source of truth. Joe DosSantos, Workday’s VP of Enterprise Data and Analytics, joins Robb and Josh for a wide-ranging conversation about canonical knowledge, the semantic layer, and why data governance, a concept from the 1990s, has suddenly become essential for AI deployment. Large language models are predictive engines modeled to anticipate what users probably likely mean. For B2C applications where multiple interpretations are acceptable, this works fine. But enterprises need deterministic truth, not probabilistic guesses. The trio outline a solution in three layers: establishing canonical knowledge, building a semantic layer to translate between human definitions and machine-readable formats like YAML, and using LLMs as an interface to deterministic back-end systems. For leaders evaluating AI investments, this episode clarifies what actually needs to be built before agents can deliver value: not flashy use cases, but the unglamorous, essential work of data governance and semantic translation. ---------- Support our show by supporting our sponsors! This episode is supported by OneReach.ai Forged over a decade of R&D and proven in 10,000+ deployments, OneReach.ai’s GSX is the first complete AI agent runtime environment (circa 2019) — a hardened AI agent architecture for enterprise control and scale. Backed by UC Berkeley, recognized by Gartner, and trusted across highly regulated industries, including healthcare, finance, government and telecommunications. A complete system for accelerating AI adoption — design, train, test, deploy, monitor, and orchestrate neurosymbolic applications (agents). - Use any AI models - Build and deploy intelligent agents fast - Create guardrails for organizational alignment - Enterprise-grade security and governance Request free prototype: https://onereach.ai/prototype/utm_source=soundcloud&utm_medium=social&utm_campaign=podcast_s7e2&utm_content=1 ---------- The revised and significantly updated second edition of our bestselling book about succeeding with AI agents, Age of Invisible Machines, is available everywhere: Amazon — https://bit.ly/4hwX0a5 Chapters - 0:00 – Welcome to Invisible Machines 1:28 – Why AI Agents Fail Without a Source of Truth 2:34 – Canonical Knowledge Is More Than Feeding Data to an LLM 3:16 – LLMs Are Good at Language, Not Truth 4:16 – The Convergence of Governance and Generative AI 5:48 – Implicit vs Explicit Knowledge Explained 7:31 – Why Accuracy Breaks Down in AI 8:37 – The Real Launchpad for AI: Get the Facts Right 9:42 – Alignment, Not Intelligence, Is the Hard Problem 10:53 – Semantic Layers: Teaching Machines Meaning 12:38 – LLMs Are Interfaces, Not Systems 14:26 – Routing Questions: Inference vs Deterministic Answers 16:21 – Canonical Knowledge Requires Human Ownership 18:16 – There Is No ROI for Data (It’s the Foundation) 23:59 – From Use Cases to Systems Thinking Episode Credits: Robb Wilson - Host Josh Tyson - Host Elias Parker - Executive Producer Vishal Menon - Producer Maksym Zlydar - Audio/Video Editor Mykhailo Lytvynov - Audio/Video Editor Eugen Petruk - Graphic Design Alla Slesarenko - Copy Vira Prykhodko - Web Development #InvisibleMachines #Podcast #TechPodcast #AIPodcast #AI #AgenticAI #AIAgents #DigitalTransformation #AIReadiness #AIDeployment #AISoftware #AITransformation #AIAdoption #AIProjects #EnterpriseAI #CanonicalKnowledge #DataGovernance #SourceOfTruth #AIArchitecture #DeterministicAI

Key Metrics

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Pitches sent
65
From PodPitch users
Rank
#2536
Top 5.1% by pitch volume (Rank #2536 of 50,000)
Average rating
4.6
Ratings count may be unavailable
Reviews
1
Written reviews (when available)
Publish cadence
Daily or near-daily
Active monthly
Episode count
110
Data updated
Feb 10, 2026
Social followers
403.8K

Public Snapshot

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Country
Ukraine
Language
English
Language (ISO)
Release cadence
Daily or near-daily
Latest episode date
Thu Jan 29 2026

Audience & Outreach (Public)

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Audience range
Under 4K / month
Public band
Reply rate band
35%+
Public band
Response time band
30+ days
Public band
Replies received
1–5
Public band

Public ranges are rounded for privacy. Unlock the full report for exact values.

Presence & Signals

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Social followers
403.8K
Contact available
Yes
Masked on public pages
Sponsors detected
Private
Hidden on public pages
Guest format
Private
Hidden on public pages

Social links

No public profiles listed.

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Monthly listeners49,360
Reply rate18.2%
Avg response4.1 days
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Frequently Asked Questions About Invisible Machines podcast by UX Magazine

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What is Invisible Machines podcast by UX Magazine about?

"The enemy of nonsense in AI"   |  The #1 podcast about agentic AI Join great conversations with experts about the intersections between AI, product design, technology and business. The bestselling authors of Age Of Invisible Machines are joined by other luminaries to continue the conversations that began in their book—the first bestseller about agentic AI. With a newly revised and updated Second Edition that hit the shelves in spring of 2025, Robb Wilson (CEO and Co-Founder of OneReach.ai) and Josh Tyson expand their explorations of disruptive technology with fellow AI insiders, experts, and luminaries working in adjacent realms.

How often does Invisible Machines podcast by UX Magazine publish new episodes?

Daily or near-daily

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