LLM

How to deploy granite-3.2-8b-instruct on a GPU cloud

A 8.2B language model for chat and instruction-following. Full specs, license and use cases.

granite-3.2-8b-instruct size and hardware requirements

8.2B
Total parameters
Dense (no MoE)
Architecture
BF16
Published precision
18.3 GB
Min VRAM (native)
PrecisionWeight size on diskRequired VRAMCheapest live fitGPUs neededEst. $/hr (full fit)
BF1615.2 GB18.3 GBRTX 30901$0.147/hr
FP8 (quantized)7.6 GB9.1 GBRTX 4070 Super1$0.110/hr
INT4 (quantized)3.8 GB4.6 GBRTX 4070 Super1$0.110/hr

How to run granite-3.2-8b-instruct

Run granite-3.2-8b-instruct with vLLM

Generic example, not from the model's own docs: adjust flags (quantization, context length, parallelism) for your setup.

vllm serve ibm-granite/granite-3.2-8b-instruct --tensor-parallel-size 1

Run granite-3.2-8b-instruct with Ollama

Verified against Ollama's own library listing.

ollama run granite3.2:8b

Source: https://ollama.com/library/granite3.2:8b

Run granite-3.2-8b-instruct with GGUF quantizations

Prebuilt GGUF weights published at lmstudio-community/granite-3.2-8b-instruct-GGUF. Run with llama.cpp's llama-server or load the repo directly in LM Studio.

llama-server -hf lmstudio-community/granite-3.2-8b-instruct-GGUF

Source: https://huggingface.co/lmstudio-community/granite-3.2-8b-instruct-GGUF

Deploy granite-3.2-8b-instruct on Aquanode

Aquanode has no one-click deploy template for granite-3.2-8b-instruct; you install the inference engine yourself with the commands below. Aquanode sells GPU pods billed per second, not a hosted inference API.

  1. Launch a bare GPU pod sized to the requirement above (1× RTX 3090 or larger).
  2. Open a terminal on the pod, or save one of the commands above as a startup script so it runs automatically the first time the pod boots.
  3. Run the command and connect to the resulting endpoint.

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