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602 points emrah | 1 comments | | HN request time: 0.203s | source
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simonw ◴[] No.43743896[source]
I think gemma-3-27b-it-qat-4bit is my new favorite local model - or at least it's right up there with Mistral Small 3.1 24B.

I've been trying it on an M2 64GB via both Ollama and MLX. It's very, very good, and it only uses ~22Gb (via Ollama) or ~15GB (MLX) leaving plenty of memory for running other apps.

Some notes here: https://simonwillison.net/2025/Apr/19/gemma-3-qat-models/

Last night I had it write me a complete plugin for my LLM tool like this:

  llm install llm-mlx
  llm mlx download-model mlx-community/gemma-3-27b-it-qat-4bit

  llm -m mlx-community/gemma-3-27b-it-qat-4bit \
    -f https://raw.githubusercontent.com/simonw/llm-hacker-news/refs/heads/main/llm_hacker_news.py \
    -f https://raw.githubusercontent.com/simonw/tools/refs/heads/main/github-issue-to-markdown.html \
    -s 'Write a new fragments plugin in Python that registers
    issue:org/repo/123 which fetches that issue
        number from the specified github repo and uses the same
        markdown logic as the HTML page to turn that into a
        fragment'
It gave a solid response! https://gist.github.com/simonw/feccff6ce3254556b848c27333f52... - more notes here: https://simonwillison.net/2025/Apr/20/llm-fragments-github/
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tomrod ◴[] No.43744215[source]
Simon, what is your local GPU setup? (No doubt you've covered this, but I'm not sure where to dig up).
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simonw ◴[] No.43744258[source]
MacBook Pro M2 with 64GB of RAM. That's why I tend to be limited to Ollama and MLX - stuff that requires NVIDIA doesn't work for me locally.
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Elucalidavah ◴[] No.43744971[source]
> MacBook Pro M2 with 64GB of RAM

Are there non-mac options with similar capabilities?

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1. simonw ◴[] No.43745043[source]
Yes, but I don't really know anything about those. https://www.reddit.com/r/LocalLLaMA/ is full of people running models on PCs with NVIDIA cards.

The unique benefit of an Apple Silicon Mac at the moment is that the 64GB of RAM is available to both the GPU and the CPU at once. With other hardware you usually need dedicated separate VRAM for the GPU.