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Explore every episode of the podcast Machines & Meaning

Dive into the complete episode list for Machines & Meaning. Each episode is cataloged with detailed descriptions, making it easy to find and explore specific topics. Keep track of all episodes from your favorite podcast and never miss a moment of insightful content.

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1–14 of 14

TitlePub. DateDuration
John Rawls and the Right to Meaningful Work29 Jun 202600:13:38

Using John Rawls’s theory of justice as fairness, we examine whether a society that willfully eliminates the conditions for meaningful work can be considered just, regardless of how many new jobs it creates.

Ayn Rand and the Dark Side of AI Efficiency16 Mar 202600:16:15

Using Ayn Rand’s philosophy of Objectivism, we examine how AI’s efficiency gains are made possible by ignoring the quiet awareness of claiming skills we don’t fully possess.

Ibn Khaldun’s Warning: When Tools Become Purposes22 Dec 202500:12:01

Episode Description: Using Ibn Khaldun’s concept of asabiyyah (ah-sa-BEE-yah), a word derived from Arabic that roughly translates to tribal solidarity or social cohesion, we examine how AI is being rhetorically elevated to the status of collective purpose.

Credibility Deficits: Miranda Fricker and the Illusion of AI Literacy11 Nov 202500:15:11

Using Miranda Fricker’s concept of testimonial injustice, we examine how AI creates new hierarchies of who gets taken seriously and how the credibility we assign (or don’t) affect people’s lives.

AI’s Aesthetic Trap: Søren Kierkegaard’s Three Spheres of Existence13 Oct 202500:15:23

Exploring how Kierkegaard’s three spheres of existence reveal why AI might be creating the most sophisticated trap for authentic human development by appearing to create fulfillment while preventing genuine growth.

Hannah Arendt and AI’s Collective Thoughtlessness08 Sep 202500:12:57

Exploring how Hannah Arendt’s concept of “thoughtlessness” reveals why AI systems create the perfect conditions for systematic harm that emerge from widespread non-engagement with consequences.

Aristotle’s Phronesis and the Wisdom to Judge Ourselves04 Aug 202500:14:28

Exploring how Aristotle’s concept of practical wisdom reveals the meta-cognitive skills professionals will need to remain valuable in an age when AI can perform most technical tasks.

Permanent Intermediates: Martin Heidegger and AI’s Erosion of Mastery01 Jul 202500:12:52

Exploring how artificial intelligence systematically undermines the conditions necessary for developing human expertise, creating what we might call “permanent intermediates,” people who achieve functional competence but never develop true mastery.

The Accountability Threshold: Thomas Aquinas’ Doctrine of Double Effect.01 Jun 202500:14:23

Exploring how Thomas Aquinas’ Doctrine of Double Effect helps us understand our complex relationship with AI’s unintended consequences. 

Universal Laws: Kant’s Categorical Imperative and AI’s Immutable Rules01 May 202500:15:45

Exploring how Immanuel Kant’s concept of the categorical imperative parallels our current challenge of creating immutable ethical rules for artificial intelligence.

The Detriment of Constructs: Simone de Beauvoir and Our AI Categories01 Apr 202500:14:58

Using Simone de Beauvoir’s philosophical framework on categorization, we examine how rigid binary thinking and over-compartmentalization limit our ability to understand and govern A.I.

The Calculation Default: What RenĂŠ Descartes Teaches Us About Reasoning Models02 Mar 202500:15:17

Using Descartes’ framework for how we acquire knowledge, we examine what happens when AI reasoning models confront problems where mathematical certainty isn’t enough.

Who’s Adapting to Whom? Lewis Mumford’s Warning for Technics.03 Feb 202500:11:59

We explore Lewis Mumford’s concept of ‘technics’ to answer an essential question in AI: are we creating technologies that adapt to serve human needs, or are we increasingly adapting ourselves to serve theirs?

The Narrative Machine: LLMs Through the Eyes of Alasdair MacIntyre31 Dec 202400:12:15

We explore Alisdair MacIntyre’s concept of narrative fragmentation and whether large language models (LLMs) contribute to it through their underlying architecture. 

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