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Jensen Huang – Will Nvidia’s moat persist? Analytics Table
Income Estimates for Jensen Huang – Will Nvidia’s moat persist?
Based on this YouTube video's total view count of 945K views and industry-standard rates, the estimated total earning is $662 - $1.89K through ad revenue. Historical data is not yet available to calculate daily, weekly, or monthly averages.
About Jensen Huang – Will Nvidia’s moat persist?
Explore Jensen Huang – Will Nvidia’s moat persist? with 945,497 views, 17,974 likes, and 3,900 comments. Experience the impact of this video content that has captured audience attention.
I asked Jensen about TPU competition, Nvidia’s lock on the ever more bottlenecked supply chain needed to make advanced chips, whether we should be selling AI chips to China, why Nvidia doesn’t just become a hyperscaler, how it makes its investments, and much more. Enjoy! +𝐄𝐏𝐈𝐒𝐎𝐃𝐄 𝐋𝐈𝐍𝐊𝐒 * Transcript: https://www.dwarkesh.com/p/jensen-huang * Apple Podcasts: https://podcasts.apple.com/us/podcast/jensen-huang-tpu-competition-why-we-should-sell-chips/id1516093381?i=1000761582962 * Spotify: https://open.spotify.com/episode/1viBRy6dQdlSw0OdFvogXB?si=bc2cdbd467ed4ee3 𝐒𝐏𝐎𝐍𝐒𝐎𝐑𝐒 - Crusoe's cloud runs on state-of-the-art Blackwell GPUs, with Vera Rubin deployment scheduled for later this year. But hardware is only part of the story—for inference, Crusoe's MemoryAlloy tech implements a cluster-wide KV cache, delivering up to 10x faster TTFT and 5x better throughput than vLLM. Learn more at https://crusoe.ai/dwarkesh - Cursor helped me build an AI co-researcher over the course of a weekend. Now I have an AI agent that I can collaborate with in Google Docs via inline comment threads! And while other agentic coding tools feel like a total black-box, Cursor let me stay on top of the full implementation. You can try my co-researcher out at https://github.com/dwarkeshsp/ai_coworker, or get started on your own Cursor project today at https://cursor.com/dwarkesh - Jane Street spent ~20,000 GPU hours training backdoors into 3 different language models, then challenged my audience to find the triggers. They received some clever solutions—like comparing the base and fine-tuned versions and extrapolating any differences to reveal the hidden backdoor—but no one was able to solve all 3. So if open problems like this excite you, Jane Street is hiring. Learn more at https://janestreet.com/dwarkesh To sponsor a future episode, visit https://dwarkesh.com/advertise. 𝐓𝐈𝐌𝐄𝐒𝐓𝐀𝐌𝐏𝐒 00:00:00 – Is Nvidia’s biggest moat its grip on scarce supply chains? 00:16:25 – Will TPUs break Nvidia’s hold on AI compute? 00:41:06 – Why doesn’t Nvidia become a hyperscaler? 00:57:36 – Should we be selling AI chips to China? 01:35:06 – Why doesn’t Nvidia make multiple different chip architectures?
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