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Superlinked
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Superlinked
@superlinked
Open-source inference for agents.
superlinked.com
Joined September 2019
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  • user avatar
    Superlinked
    @superlinked
    10h
    Stop deploying four containers for four models. The industry standard wastes GPU space. SIE handles scoring, encoding, and extracting in one process. Simplify your stack at github.com/superlinked/sie #AI #LLM #Infra
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  • user avatar
    Superlinked
    @superlinked
    Jul 27
    Stop wasting GPU budget on one-container-per-model setups. The industry default wastes resources. We built SIE to handle multiple models through a single process. Check the repo: github.com/superlinked/sie. #AI #MachineLearning #LLM #GPU
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  • user avatar
    Superlinked
    @superlinked
    Jul 27
    Can small AI models actually do the job? If you can serve them on a single, older GPU, they might be the better choice for production. Stop chasing the biggest model and start optimizing. Check out the SIE repo for more: github.com/superlinked/sie #AI #LLM #MachineLearning #Tech
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  • user avatar
    Superlinked
    @superlinked
    Jul 26
    Agentic inference looks just like a modern search pipeline. You need interaction models, sparse matching, and a final re-ranker. But scaling four separate containers is a mess. That is why we built SIE. One process, one API, three primitives. Grab it here: github.c...
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  • user avatar
    Superlinked
    @superlinked
    Jul 26
    Bundling inference into your platform cuts out network hops and lets you tailor performance to your specific traffic. It makes your system tighter. Ditch the black box approach. Code here: github.com/superlinked/sie #AI #MachineLearning #LLM
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