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Decentralized AI training networks like @Pluralis' Agora are the only true counterbalance to centralized AI. https://x.com/Pluralis/status/2065899910080115117

@jbrukh·13 de jun. de 2026·5 fontes·positivo
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Decentralized AI training networks like Pluralis' Agora are presented as the only true counterbalance to centralized AI.

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Decentralized AI training networks like @Pluralis' Agora are the only true counterbalance to centralized AI. https://x.com/Pluralis/status/2065899910080115117

@jbrukh
13 de jun. de 2026

“there are no H100, B200's” https://x.com/pluralis/status/2065899910080115117

@gregosuri
13 de jun. de 2026

“there are no H100, B200's” https://x.com/pluralis/status/2065899910080115117

@jbrukh
14 de jun. de 2026

A year ago it was impossible to train LLMs on consumer GPUs. Now it’s happening in real time and the parameter count is going up. https://x.com/pluralis/status/2065899910080115117

@jbrukh
14 de jun. de 2026

Pluralis is training a model on consumer GPUs with the explicit goal of enabling you to own a piece without waiting for a trillion$ IPO, and also becoming the best (open source) LLM thanks to distributed compute. https://x.com/pluralis/status/2065899910080115117

@jessewldn
14 de jun. de 2026

Pluralis is training a model on consumer GPUs with the explicit goal of enabling you to own a piece without waiting for a trillion$ IPO, and also becoming the best (open source) LLM thanks to distributed compute. https://x.com/pluralis/status/2065899910080115117

@jbrukh
14 de jun. de 2026

I'm not here to convince you, but the state of the art of decentralized training on DiLoCo style approaches alone is closer to 100-200B parameters, which is commercially viable size. (See latest release from @MacrocosmosAI, e.g.) @Pluralis is at 8B with *model-parallel* training that breaks up the

@jbrukh
14 de jun. de 2026