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ML Security: Why should you care? // Sahbi Chaieb // MLOps Coffee Sessions #51

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Manage episode 313294428 series 3241972
Content provided by Demetrios Brinkmann. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Demetrios Brinkmann or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.

Coffee Sessions #51 with Sahbi Chaieb, ML security: Why should you care?
//Abstract
Sahbi, a senior data scientist at SAS, joined us to discuss the various security challenges in MLOps. We went deep into the research he found describing various threats as part of a recent paper he wrote. We also discussed tooling options for this problem that is emerging from companies like Microsoft and Google.
// Bio
Sahbi Chaieb is a Senior Data Scientist at SAS, he has been working on designing, implementing, and deploying Machine Learning solutions in various industries for the past 5 years. Sahbi graduated with an Engineering degree from Supélec, France, and holds an MS in Computer Science specialized in Machine Learning from Georgia Tech.
--------------- ✌️Connect With Us ✌️ -------------
Join our slack community: https://go.mlops.community/slack
Follow us on Twitter: @mlopscommunity
Sign up for the next meetup: https://go.mlops.community/register
Connect with Demetrios on LinkedIn: https://www.linkedin.com/in/dpbrinkm/
Connect with Vishnu on LinkedIn: https://www.linkedin.com/in/vrachakonda/
Connect with Sahbi on LinkedIn: https://www.linkedin.com/in/sahbichaieb/
Timestamps:
[00:00] Introduction to Sahbi Chaieb
[01:25] Sahbi's background in tech
[02:57] Inspiration of the article
[09:40] Why should you care about keeping our model secure?
[12:53] Model stealing
[14:16] Development practices
[17:24] Other tools in the toolbox covered in the article
[21:29] Stories/occurrences where data was leaked
[24:45] EU Regulations on robustness
[26:49] Dangers of federated learning
[31:50] Tooling status on model security [33:58] AI Red Teams
[36:42] ML Security best practices
[38:26] AI + Cyber Security
[39:26] Synthetic Data
[42:51] Prescription on ML Security in 5-10 years
[46:37] Pain points encountered

  continue reading

329 episodes

Artwork
iconShare
 
Manage episode 313294428 series 3241972
Content provided by Demetrios Brinkmann. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Demetrios Brinkmann or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.

Coffee Sessions #51 with Sahbi Chaieb, ML security: Why should you care?
//Abstract
Sahbi, a senior data scientist at SAS, joined us to discuss the various security challenges in MLOps. We went deep into the research he found describing various threats as part of a recent paper he wrote. We also discussed tooling options for this problem that is emerging from companies like Microsoft and Google.
// Bio
Sahbi Chaieb is a Senior Data Scientist at SAS, he has been working on designing, implementing, and deploying Machine Learning solutions in various industries for the past 5 years. Sahbi graduated with an Engineering degree from Supélec, France, and holds an MS in Computer Science specialized in Machine Learning from Georgia Tech.
--------------- ✌️Connect With Us ✌️ -------------
Join our slack community: https://go.mlops.community/slack
Follow us on Twitter: @mlopscommunity
Sign up for the next meetup: https://go.mlops.community/register
Connect with Demetrios on LinkedIn: https://www.linkedin.com/in/dpbrinkm/
Connect with Vishnu on LinkedIn: https://www.linkedin.com/in/vrachakonda/
Connect with Sahbi on LinkedIn: https://www.linkedin.com/in/sahbichaieb/
Timestamps:
[00:00] Introduction to Sahbi Chaieb
[01:25] Sahbi's background in tech
[02:57] Inspiration of the article
[09:40] Why should you care about keeping our model secure?
[12:53] Model stealing
[14:16] Development practices
[17:24] Other tools in the toolbox covered in the article
[21:29] Stories/occurrences where data was leaked
[24:45] EU Regulations on robustness
[26:49] Dangers of federated learning
[31:50] Tooling status on model security [33:58] AI Red Teams
[36:42] ML Security best practices
[38:26] AI + Cyber Security
[39:26] Synthetic Data
[42:51] Prescription on ML Security in 5-10 years
[46:37] Pain points encountered

  continue reading

329 episodes

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