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ML Security: AI Incident Response Plans and Enterprise Risk Culture; With Guest: Patrick Hall

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Manage episode 362900667 series 3461851
المحتوى المقدم من MLSecOps.com. يتم تحميل جميع محتويات البودكاست بما في ذلك الحلقات والرسومات وأوصاف البودكاست وتقديمها مباشرة بواسطة MLSecOps.com أو شريك منصة البودكاست الخاص بهم. إذا كنت تعتقد أن شخصًا ما يستخدم عملك المحمي بحقوق الطبع والنشر دون إذنك، فيمكنك اتباع العملية الموضحة هنا https://ar.player.fm/legal.

In this episode of The MLSecOps Podcast, Patrick Hall, co-founder of BNH.AI and author of "Machine Learning for High-Risk Applications," discusses the importance of “responsible AI” implementation and risk management. He also shares real-world examples of incidents resulting from the lack of proper AI and machine learning risk management; supporting the need for governance, security, and auditability from an MLSecOps perspective.
This episode also touches on the culture items and capabilities organizations need to build to have a more responsible AI implementation, the key technical components of AI risk management, and the challenges enterprises face when trying to implement responsible AI practices - including improvements to data science culture that some might suggest lacks authentic “science” and scientific practices.
Also discussed are the unique challenges posed by large language models in terms of data privacy, bias management, and other incidents. Finally, Hall offers practical advice on using the NIST AI Risk Management Framework to improve an organization's AI security posture, and how BNH.AI can help those in risk management, compliance, general counsel and various other positions.

Thanks for listening! Find more episodes and transcripts at https://bit.ly/MLSecOpsPodcast.
Additional tools and resources to check out:
Protect AI Radar: End-to-End AI Risk Management
Protect AI’s ML Security-Focused Open Source Tools
LLM Guard - The Security Toolkit for LLM Interactions
Huntr - The World's First AI/Machine Learning Bug Bounty Platform

  continue reading

32 حلقات

Artwork
iconمشاركة
 
Manage episode 362900667 series 3461851
المحتوى المقدم من MLSecOps.com. يتم تحميل جميع محتويات البودكاست بما في ذلك الحلقات والرسومات وأوصاف البودكاست وتقديمها مباشرة بواسطة MLSecOps.com أو شريك منصة البودكاست الخاص بهم. إذا كنت تعتقد أن شخصًا ما يستخدم عملك المحمي بحقوق الطبع والنشر دون إذنك، فيمكنك اتباع العملية الموضحة هنا https://ar.player.fm/legal.

In this episode of The MLSecOps Podcast, Patrick Hall, co-founder of BNH.AI and author of "Machine Learning for High-Risk Applications," discusses the importance of “responsible AI” implementation and risk management. He also shares real-world examples of incidents resulting from the lack of proper AI and machine learning risk management; supporting the need for governance, security, and auditability from an MLSecOps perspective.
This episode also touches on the culture items and capabilities organizations need to build to have a more responsible AI implementation, the key technical components of AI risk management, and the challenges enterprises face when trying to implement responsible AI practices - including improvements to data science culture that some might suggest lacks authentic “science” and scientific practices.
Also discussed are the unique challenges posed by large language models in terms of data privacy, bias management, and other incidents. Finally, Hall offers practical advice on using the NIST AI Risk Management Framework to improve an organization's AI security posture, and how BNH.AI can help those in risk management, compliance, general counsel and various other positions.

Thanks for listening! Find more episodes and transcripts at https://bit.ly/MLSecOpsPodcast.
Additional tools and resources to check out:
Protect AI Radar: End-to-End AI Risk Management
Protect AI’s ML Security-Focused Open Source Tools
LLM Guard - The Security Toolkit for LLM Interactions
Huntr - The World's First AI/Machine Learning Bug Bounty Platform

  continue reading

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