All LLM Models

Browse 1214 LLM models with VRAM requirements, quantization options, and hardware compatibility.

Understanding LLM VRAM Requirements

How much VRAM you need depends on the model size and quantization level. Quantization reduces the precision of model weights, trading small quality losses for significantly lower VRAM usage. For example, a 7B parameter model needs ~14 GB at FP16 but only ~4 GB at Q4_K_M quantization.

Model List

Nerdsking Python Coder 7B I

Nerdsking · 7B · runs from 3.3 GB

311 18

Nerdsking Python Coder 7B I is a 7B-parameter open language model from Nerdsking. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatCode

Datarus R1 14B Preview

DatarusAI · 14.8B · runs from 7.0 GB

289 141

Datarus R1 14B Preview is a 14.8B-parameter open language model from DatarusAI. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatReasoning

Qwen3 Code Reasoning 4B

GetSoloTech · 4B · runs from 2.2 GB

284 15

Qwen3 Code Reasoning 4B is a 4B-parameter open language model from GetSoloTech in the Qwen 3 family. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatCodeReasoning

JOSIE 1.1 4B Instruct

Goekdeniz-Guelmez · 4.0B · runs from 2.2 GB

280 2

JOSIE 1.1 4B Instruct is a 4.0B-parameter open language model from Goekdeniz-Guelmez. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Browsesafe

perplexity-ai · 30.5B · runs from 13.4 GB

277 44

Browsesafe is a 30.5B-parameter open language model from perplexity-ai. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

MN VelvetCafe RP 12B

IggyLux · 12.2B · runs from 5.9 GB

274 4

MN VelvetCafe RP 12B is a 12.2B-parameter open language model from IggyLux. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatRoleplay

SmolLM3 3B ONNX

Hugging Face · 3B · runs from 1.7 GB

267 26

SmolLM3 3B ONNX is a 3B-parameter open language model from Hugging Face in the SmolLM family. It supports a context window of up to 65,536 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Gemma 3 270M IT Heretic

p-e-w · 268M · runs from 0.4 GB

266 11

Gemma 3 270M IT Heretic is a 268M-parameter open language model from p-e-w in the Gemma 3 family. It supports a context window of up to 32,768 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Scout 4B

vanta-research · 4.3B · runs from 2.5 GB

263 18

Scout 4B is a 4.3B-parameter open language model from vanta-research. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatReasoningRoleplay

Protocol Phantom 12B

DarkArtsForge · 12.2B · runs from 5.9 GB

263 2

Protocol Phantom 12B is a 12.2B-parameter open language model from DarkArtsForge. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

GhostFace 24B V1

Naphula · 23.6B · runs from 10.7 GB

260 10

GhostFace 24B V1 is a 23.6B-parameter open language model from Naphula. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Nandi Mini V1.1 600M Intermediate Checkpoint 400GT

FrontiersMind · 649M · runs from 1.8 GB

253 8

Nandi Mini V1.1 600M Intermediate Checkpoint 400GT is a 649M-parameter open language model from FrontiersMind. It supports a context window of up to 2,048 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Huihui MoE 23B A4B Abliterated

huihui-ai · 23.2B · runs from 10.4 GB

239 4

Huihui MoE 23B A4B Abliterated is a 23.2B-parameter open language model from huihui-ai. It supports a context window of up to 40,960 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Turkish Gemma 4B T1 Scout

ytu-ce-cosmos · 4.3B · runs from 2.5 GB

234 9

Turkish Gemma 4B T1 Scout is a 4.3B-parameter open language model from ytu-ce-cosmos in the Gemma 4 family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatFunctionsReasoning

LensVLM 9B

Apple · 9.4B · runs from 3.2 GB

233 114

LensVLM-9B is Apple's research vision-language model for efficient long-document understanding, built on a 9.4-billion-parameter Qwen3.5-9B backbone. Rather than feeding a document's full text into the context window, it scans compressed images of the text and uses learned tools to selectively expand only the pages relevant to a query back into their uncompressed form, at configurable 5x, 10x, or 15x compression ratios, letting it reason over long documents while processing far less raw context per query. It is a research model released alongside its arXiv paper and reference code, not a product, and is not described as instruction-tuned for general chat. At 9.4 billion parameters it fits on a single consumer GPU, especially once quantized. Context length is 262,144 tokens. It is released under the Apple Machine Learning Research Model License, a custom license restricted strictly to non-commercial research purposes, with no commercial exploitation permitted. It was published in September 2026.

Vision

BharatGPT 3B Indic

CoRover · 3.2B · runs from 7.1 GB

233 67

BharatGPT 3B Indic is a 3.2B-parameter open language model from CoRover. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Param 1 5B

bharatgenai · 5B · runs from 10.4 GB

230 3

Param 1 5B is a 5B-parameter open language model from bharatgenai. It supports a context window of up to 4,096 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

LFM2.5 8B A1B Opus Distil

reaperdoesntknow · 8.5B · runs from 4 GB

229 4

LFM2.5 8B A1B Opus Distil is a 8.5B-parameter open language model from reaperdoesntknow in the LFM2.5 family. It supports a context window of up to 128,000 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatReasoning

GigaChat3 10B A1.8B Base

ai-sage · 11.5B · runs from 5.5 GB

223 12

GigaChat3 10B A1.8B Base is a 11.5B-parameter open language model from ai-sage. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

YanoljaNEXT EEVE Instruct 2.8B

yanolja · 2.8B · runs from 2.2 GB

209 30

YanoljaNEXT EEVE Instruct 2.8B is a 2.8B-parameter open language model from yanolja. It supports a context window of up to 2,048 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Gemma 4 E4B Luchador

rpDungeon · 8.0B · runs from 16.5 GB

209 9

Gemma 4 E4B Luchador is a 8.0B-parameter open language model from rpDungeon in the Gemma 4 family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatRoleplay

Internlm Chat 20B

InternLM · 20B · runs from 11.3 GB

204 134

InternLM-Chat-20B is a 20-billion-parameter chat model from a collaboration between the Shanghai AI Laboratory, SenseTime, CUHK, and Fudan University, built by applying supervised fine-tuning and RLHF on top of the InternLM-20B base model. InternLM-20B used a deliberately deep 60-layer architecture, versus the 32-40 layers typical of 7B/13B models of its era, trained on over 2.3 trillion tokens of English, Chinese, and code data, giving it stronger reasoning, math, and coding scores than contemporaries like Llama 2 13B and Baichuan2-13B. As a 20-billion-parameter dense model, it fits on a single consumer GPU once quantized. Context length is 4,096 tokens natively, extendable to about 16,384 tokens through inference-time extrapolation, per the model card. It is released under the Apache 2.0 license for the code, with model weights free for academic research and available for free commercial use after applying for a license from the developers. It was published in September 2023, predating the InternLM2 generation.

Chat

Mellum2 12B A2.5B Instruct SFT

JetBrains · 12.1B · runs from 5.5 GB

202 13

Mellum2 12B A2.5B Instruct SFT is a 12.1B-parameter open language model from JetBrains in the Mellum family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

MIST Mini 8B Thinking

olaverse · 8.0B · runs from 4.0 GB

201 2

MIST Mini 8B Thinking is a 8.0B-parameter open language model from olaverse. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatReasoning

SmolLM2 70M

codelion · 69M · runs from 0.4 GB

197 3

SmolLM2 70M is a 69M-parameter open language model from codelion in the SmolLM family. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatCode

StorySupra 10M

SupraLabs · 13M · runs from 0.3 GB

196 6

StorySupra 10M is a 13M-parameter open language model from SupraLabs. It supports a context window of up to 256 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

CAT Thinking 8B

cyberagent · 8.2B · runs from 4.1 GB

191 7

CAT Thinking 8B is a 8.2B-parameter open language model from cyberagent. It supports a context window of up to 40,960 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat

Mistral Small 3.2 24B Qiskit

Qiskit · 24.0B · runs from 10.9 GB

184 7

Mistral Small 3.2 24B Qiskit is a 24.0B-parameter open language model from Qiskit in the Mistral family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatCode

Qwen3.5 4B MiniFantasy MTP

MuXodious · 4.7B · runs from 9.8 GB

181 4

Qwen3.5 4B MiniFantasy MTP is a 4.7B-parameter open language model from MuXodious in the Qwen 3.5 family. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatRoleplay

Gemma 2 Mitra E

buddhist-nlp · 9.2B · runs from 4.8 GB

179 3

Gemma 2 Mitra E is a 9.2B-parameter open language model from buddhist-nlp in the Gemma 2 family. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

Chat