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Latent Space: The AI Engineer Podcast

The Inventors of Deep Research

Feb 18, 2025
Aarush Selvan and Mukund Sridhar, key figures in Google's Gemini Deep Research project, share insights on the transformative power of AI in research. They discuss how Gemini serves as a personal research assistant, generating comprehensive reports swiftly. The pair explain the challenges of navigating HTML for AI models and the importance of user interaction in automated planning systems. They also explore the balance between speed and quality in AI outputs, emphasizing collaboration and innovative methodologies in shaping the future of deep research.
01:01:58

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Quick takeaways

  • The 2020s are marked by advancements in deep research capabilities, aligning with the rise of deep learning and agent-driven systems.
  • OpenAI’s Deep Research and similar products have garnered praise for their efficiency, allowing users to quickly access high-quality research outcomes.

Deep dives

The Emergence of Deep Research in AI

The rise of deep research capabilities in AI is highlighted as a significant advancement in the 2020s, aligning with trends in deep learning and agentic systems. Commercial products like OpenAI’s DeepResearch and Google’s Gemini stand out for their ability to bundle custom-tuned models that meet specific research needs. This new category of deep research agents has gained immediate praise for their efficiency and quality, likened to having a skilled research assistant who can deliver detailed reports in a fraction of the time traditional research methods would require. With numerous clones emerging in the market, this reflects a growing demand for quick, effective digital research solutions.

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