Ollama gives you a command-line workflow and a local REST API for downloading, running, inspecting, customizing, and removing language models. Start with ollama run to try a model; use ollama list and ollama ps to see what is stored and running. Your computer’s memory and the model’s size will shape what is practical.
Install Ollama for your operating system
Use the current instructions for your platform: Ollama’s official quickstart links to macOS and Windows downloads, Linux installation options, and the official Docker image. Linux’s quickstart includes this shell installer command:
curl -fsSL https://ollama.com/install.sh | sh
Linux users who need more control can follow the separate manual instructions linked from the quickstart. The project documentation index also links platform-specific and Docker guides; use those rather than assuming one installation method fits every system: Ollama documentation index.
Choose a model that fits your machine
Model names may include tags or variants, and the available library changes over time. Browse the Ollama model library and check the selected model’s current requirements before downloading it.
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Ollama’s quickstart gives the following example artifact sizes and minimum RAM guidance. Artifact size is the download size shown for these examples; it is not the same as the RAM needed to run a model.
| Quickstart example | Example artifact size | Quickstart RAM guidance |
|---|---|---|
| Llama 3.2 1B | 1.3 GB | not stated for this specific example; the quickstart gives at least 8 GB for its 7B examples |
| Llama 3.2 3B | 2.0 GB | not stated for this specific example; the quickstart gives at least 8 GB for its 7B examples |
| 7B model examples | not stated | at least 8 GB |
| 13B model examples | not stated | at least 16 GB |
| 33B model examples | not stated | at least 32 GB |
| Llama 3.1 70B | 40 GB | not stated for this specific example |
| Llama 3.2 Vision 90B | not stated | not stated |
| Llama 3.1 405B | 231 GB | not stated for this specific example |
These sizes and RAM figures are examples from the Ollama quickstart, whose retrieved page does not state a publication year. The RAM figures are guidance, not guarantees of speed or suitability: model variant, quantization, context length, and device can all affect actual use. A large download size also does not by itself establish the memory required at runtime.
Download and run a model
To download and start the quickstart’s basic example, open a terminal and run:
ollama run llama3.2
Ollama downloads the model if it is not already present, then starts an interactive session. For an explicit download or update without immediately opening a chat, use:
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ollama pull llama3.2
A pull can update an existing local copy, downloading only the difference. Model names and tags are subject to change, so use the library’s current listing for the exact identifier you want.
Inspect and manage local models
These commands answer different questions: list shows stored models, while ps shows models currently loaded.
| What you want to do | Command |
|---|---|
| List models stored locally | ollama list |
| See models currently loaded | ollama ps |
| View information about a model | ollama show <model> |
| Stop a running model | ollama stop <model> |
| Remove a local model | ollama rm <model> |
| Copy a model under another name | ollama cp <source> <destination> |
Replace each angle-bracketed value with the model name or source and destination names you intend to use. Removing a model deletes that local copy; pull it again if you later want to use it.
Customize a model with a Modelfile
A Modelfile can point to a library model or a local GGUF file and specify supported customization, such as a parameter or system message. This example starts from a library model:
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FROM llama3.2
PARAMETER temperature 0.7
SYSTEM "You are a concise writing assistant."
Save it as Modelfile, then build and run the named model:
ollama create writing-assistant -f Modelfile
ollama run writing-assistant
To import a local GGUF file instead, set the FROM line to its path, for example:
FROM ./model.gguf
Then create and run it with the same commands, substituting your desired model name. These examples cover a basic workflow, not every supported format or directive. Check the current Modelfile reference and importing models guide for supported syntax and formats.
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Ollama’s quickstart demonstrates a local API on port 11434. If you need to start the service without the desktop application, run:
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ollama serve
In another terminal, send a generation request with curl:
curl http://localhost:11434/api/generate -d '{
"model": "llama3.2",
"prompt": "Why is the sky blue?"
}'
For a chat-style request, use the messages array at /api/chat:
curl http://localhost:11434/api/chat -d '{
"model": "llama3.2",
"messages": [
{"role": "user", "content": "Why is the sky blue?"}
]
}'
These are basic quickstart examples. For request options, response behavior, and other endpoints, consult the current API reference. The documentation index also links an OpenAI-compatibility reference for applications built around that interface.
Pick an interface or integration by where you want to work
The official quickstart lists community integrations, but it does not rank them or establish that one is best. Use the list as a directory and choose according to your workflow:
- Terminal: Use the Ollama CLI when you want direct commands and a lightweight interaction.
- Desktop or web chat: Look for a community client that provides the interface you prefer, and check whether inference remains on your machine or is routed to a cloud deployment.
- Your own application: Use the local REST API when you want an app to send prompts to Ollama; verify the client’s supported API format and the current endpoint documentation.
Ollama’s quickstart integration directory is the starting point for community options; inclusion there is not an endorsement or performance comparison.
Quick Recap
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