Full story w/ prompts: https://natesnewsletter.substack.com/p/what-gpt-image-2-actually-changed
What's really happening inside AI image generation after GPT-Image 2's 93% win rate?
The common story is a better image model — but the reality is more interesting: image generation just joined the reasoning stack, and the workflows, risks, and role changes that follow are nothing like the coverage suggests.
In this video, I share the inside scoop on why this is a structural shift, not a product launch:
• Why a 26-point benchmark gap signals a rules change, not a rankings change
• How thinking mode, web search, and self-verification collapsed three jobs into one prompt
• What the forgery risk means for trust, evidence, and every verification workflow
• Where Claude Design and GPT-Image 2 diverge — and which one wins for your use case
For designers, builders, and operators, the bottleneck on visual work just moved from model skill to specification quality — and teams that already think in briefs are about to pull very far ahead.
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