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DataStax and Charna Parkey에서 제공하는 콘텐츠입니다. 에피소드, 그래픽, 팟캐스트 설명을 포함한 모든 팟캐스트 콘텐츠는 DataStax and Charna Parkey 또는 해당 팟캐스트 플랫폼 파트너가 직접 업로드하고 제공합니다. 누군가가 귀하의 허락 없이 귀하의 저작물을 사용하고 있다고 생각되는 경우 여기에 설명된 절차를 따르실 수 있습니다 https://ko.player.fm/legal.
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Can You Build AI Without Bias? | John Pasmore

42:56
 
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Manage episode 497251553 series 3604986
DataStax and Charna Parkey에서 제공하는 콘텐츠입니다. 에피소드, 그래픽, 팟캐스트 설명을 포함한 모든 팟캐스트 콘텐츠는 DataStax and Charna Parkey 또는 해당 팟캐스트 플랫폼 파트너가 직접 업로드하고 제공합니다. 누군가가 귀하의 허락 없이 귀하의 저작물을 사용하고 있다고 생각되는 경우 여기에 설명된 절차를 따르실 수 있습니다 https://ko.player.fm/legal.

John Pasmore, thinks the answer is yes — but not if we keep doing things the old way. In this episode, the CEO and founder of Latimer AI lays out the company’s strategy for inclusive AI: replace scraped social content with vetted academic material, digitize underrepresented history, and build guardrails with purpose.

Charna and John also explore the implications for enterprise, healthcare, and education — sectors where small biases can cause serious harm.

TIMESTAMPS

[00:00:00] — Intro

[00:02:00] — John's Journey into AI

[00:04:00] — Data Sources & Historical Archives

[00:06:00] — Underrepresented Digital Histories

[00:08:00] — Flawed Training Sets in LLMs

[00:10:00] — Measuring & Detecting Bias

[00:12:00] — Algorithmic Bias in Hiring

[00:14:00] — Copyright & Ethical Data Use

[00:16:00] — Multimodal Platform Rollout

[00:18:00] — Enterprise Privacy & LLM Hosting

[00:20:00] — Optimism & Intergenerational Impact

[00:22:00] — Founding in a Crowded Market

[00:26:00] — Charna’s Takeaways on Systemic Bias

[00:28:00] — Guardrails vs Structural Solutions

[00:30:00] — Training Data vs Output Behavior

[00:32:00] — Algorithmic vs Contextual Bias

[00:34:00] — Providing Cultural Context to LLMs

[00:36:00] — Community-Based Data Labeling

[00:38:00] — The Yard Tour & HBCU Partnerships

[00:40:00] — Wrapping up the Season & What’s Next

QUOTES

John Pasmore

“If a company is using AI to look at resumes, what is it? How is it classifying people's names or, we're surprised that sometimes it's using the name and coming to some conclusion about the desirability of a candidate just based on their name, where maybe that wasn't the intent."

Charna Parkey

“Instead of modifying the model itself, we can say, okay, here's a historical context, here's a new cultural insight, and here's the situation. Now tell me about the outcome, right?"

  continue reading

103 에피소드

Artwork
icon공유
 
Manage episode 497251553 series 3604986
DataStax and Charna Parkey에서 제공하는 콘텐츠입니다. 에피소드, 그래픽, 팟캐스트 설명을 포함한 모든 팟캐스트 콘텐츠는 DataStax and Charna Parkey 또는 해당 팟캐스트 플랫폼 파트너가 직접 업로드하고 제공합니다. 누군가가 귀하의 허락 없이 귀하의 저작물을 사용하고 있다고 생각되는 경우 여기에 설명된 절차를 따르실 수 있습니다 https://ko.player.fm/legal.

John Pasmore, thinks the answer is yes — but not if we keep doing things the old way. In this episode, the CEO and founder of Latimer AI lays out the company’s strategy for inclusive AI: replace scraped social content with vetted academic material, digitize underrepresented history, and build guardrails with purpose.

Charna and John also explore the implications for enterprise, healthcare, and education — sectors where small biases can cause serious harm.

TIMESTAMPS

[00:00:00] — Intro

[00:02:00] — John's Journey into AI

[00:04:00] — Data Sources & Historical Archives

[00:06:00] — Underrepresented Digital Histories

[00:08:00] — Flawed Training Sets in LLMs

[00:10:00] — Measuring & Detecting Bias

[00:12:00] — Algorithmic Bias in Hiring

[00:14:00] — Copyright & Ethical Data Use

[00:16:00] — Multimodal Platform Rollout

[00:18:00] — Enterprise Privacy & LLM Hosting

[00:20:00] — Optimism & Intergenerational Impact

[00:22:00] — Founding in a Crowded Market

[00:26:00] — Charna’s Takeaways on Systemic Bias

[00:28:00] — Guardrails vs Structural Solutions

[00:30:00] — Training Data vs Output Behavior

[00:32:00] — Algorithmic vs Contextual Bias

[00:34:00] — Providing Cultural Context to LLMs

[00:36:00] — Community-Based Data Labeling

[00:38:00] — The Yard Tour & HBCU Partnerships

[00:40:00] — Wrapping up the Season & What’s Next

QUOTES

John Pasmore

“If a company is using AI to look at resumes, what is it? How is it classifying people's names or, we're surprised that sometimes it's using the name and coming to some conclusion about the desirability of a candidate just based on their name, where maybe that wasn't the intent."

Charna Parkey

“Instead of modifying the model itself, we can say, okay, here's a historical context, here's a new cultural insight, and here's the situation. Now tell me about the outcome, right?"

  continue reading

103 에피소드

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