com um clique
prepare-model-upload
Upload HuggingFace models from Colab to RunPod Network Volume.
Instalar com Codex ou Claude Copie este prompt, cole no Codex, Claude ou outro assistente e deixe que ele revise a página da skill e instale para você.
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Upload HuggingFace models from Colab to RunPod Network Volume.
Instalar com Codex ou Claude Copie este prompt, cole no Codex, Claude ou outro assistente e deixe que ele revise a página da skill e instale para você.
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| name | prepare-model-upload |
| description | Upload HuggingFace models from Colab to RunPod Network Volume. |
| metadata | {"author":"pokutuna","compatibility":"Google Colab, RunPod Network Volume with S3 API"} |
Downloading large models during GPU instance runtime wastes billing time. Use Colab to download from HuggingFace and upload to RunPod Network Volume via S3-compatible API.
HF_TOKEN: HuggingFace access tokenRUNPOD_STORAGE_ACCESS_KEY_ID: RunPod Storage Access Key IDRUNPOD_STORAGE_SECRET_ACCESS_KEY: RunPod Storage Secret Access KeyGet from https://console.runpod.io/user/storage "S3 Compatible API Commands" Example:
aws s3 ls --region xxx --endpoint-url https://s3api-xxx.runpod.io s3://your-volume-id/
aws s3 sync may fail on large volumes:
fatal error: Error during pagination: The same next token was received twice: ...
Use aws s3 cp --recursive instead (no delta transfer).
If upload failed occurs, retry with --checksum-algorithm=CRC32C.
The notebook has separate cells:
When user provides model names or aws cli command examples, output code snippets that can be directly copy-pasted into Colab cells.
Output a ready-to-paste Settings cell:
# Settings
# HuggingFace models (USER/REPOSITORY format, multiple allowed)
HF_MODELS = [
"USER_PROVIDED_MODEL", # parsed from user input
]
# RunPod Storage (copy from https://console.runpod.io/user/storage)
REGION = "" # @param {type:"string"}
ENDPOINT_URL = "" # @param {type:"string"}
BUCKET = "" # @param {type:"string"}
Parse the command and output a ready-to-paste Settings cell with values filled:
Example input:
aws s3 ls --region us-east-1 --endpoint-url https://s3api-xxxxxx.runpod.io s3://abc123def456/
Output:
# Settings
# HuggingFace models (USER/REPOSITORY format, multiple allowed)
HF_MODELS = [
"", # Add your model here, e.g., "Qwen/Qwen3-8B"
]
# RunPod Storage (parsed from aws cli command)
REGION = "us-east-1" # @param {type:"string"}
ENDPOINT_URL = "https://s3api-xxxxxx.runpod.io" # @param {type:"string"}
BUCKET = "abc123def456" # @param {type:"string"}
Combine both into a complete Settings cell ready to run.
User: "I want to put Qwen3-8B on my runpod network volume"
HF_MODELS = [
"Qwen/Qwen3-8B",
]
User: "aws s3 ls --region us-east-1 --endpoint-url https://s3api-xxx.runpod.io s3://my-bucket/"
Parse and output Settings cell with storage values filled.