15min chapter

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0 cover image

Why you should write your own LLM benchmarks — with Nicholas Carlini, Google DeepMind

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0

CHAPTER

Exploring AI Security Vulnerabilities

This chapter examines the risks associated with the Leon 400M image dataset, emphasizing issues like data poisoning and the lag in adversarial machine learning adaptations. It discusses model stealing and the implications of demonstrating effective attacks, while also advocating for a focus on tangible security threats in AI applications. Through practical examples, the chapter highlights the complexity of model vulnerabilities and the need for enhanced protective measures.

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