llama-nemotron-embed-1b-v2 Uncensored Edition

    llama-nemotron-embed-1b-v2 Uncensored Edition

    Deploying locally takes the least amount of time when executed through native OS tools.

    Make sure to follow the instructions below.

    The client handles the setup, pulling gigabytes of data automatically.

    The configuration wizard runs silently to set up the model for peak performance.

    📎 HASH: a30386235f0d4b68f005f9c7584fe19e | Updated: 2026-06-29



    • CPU: modern architecture (Zen 3 / Alder Lake minimum)
    • RAM: fast 5600MHz+ required to avoid memory bottlenecks
    • Disk Space: required: fast PCIe 4.0 drive for instant boots
    • GPU: 16 GB+ video memory highly recommended for exl2 / AWQ formats

    The **Llama-Nemotron-Embed-1B-v2** is a compact, open‑source embedding model that leverages the proven Llama architecture while focusing on efficient text representation. It delivers *state‑of‑the‑art* performance on semantic similarity tasks despite its modest **1 B** parameter count, making it ideal for edge devices and low‑resource environments. The model supports up to **2048** token context length and produces **768‑dimensional** embeddings, which balance granularity with computational efficiency. Training was performed on a diverse, **web‑scale corpus**, enabling robust understanding of multiple languages and domains without sacrificing inference speed. A quick comparison in the table below highlights how its **parameter efficiency** and **embedding quality** stack up against similar open models.

    Parameters 1 B
    Embedding Dim 768
    Context Length 2048 tokens
    Training Data Web‑scale corpus
    Model Size (approx.) 2 GB
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