
Ensuring Privacy for Any LLM with Patricia Thaine - #716
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
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Navigating AI, Privacy, and Data Protection
This chapter discusses the challenges and solutions at the intersection of artificial intelligence and data privacy, focusing on how developers can comply with data protection regulations. The conversation covers the risks associated with sensitive information in AI systems, particularly concerning data minimization, embedding leakage, and the intricacies of training entity recognition models. It emphasizes the necessity of cleansing sensitive data before utilizing large language models and highlights the importance of customized data handling to align with regulatory standards.
Transcript
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