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skills/molmim-nim/SKILL.md
8.23 KB · Oct 5, 2026 · 18:30 UTC
---
name: molmim-nim
description: >
Use this skill for MolMIM, NVIDIA's BioNeMo NIM microservice for small-molecule latent-space generation and optimization. Invoke for MolMIM, molecular embeddings, hidden states, latent decoding, sampling around a seed SMILES, CMA-ES guided molecule generation, QED or plogP optimization, hosted NVIDIA API calls, or local Docker deployment.
license: Apache-2.0 AND CC-BY-4.0
compatibility: "requests>=2.28; rdkit"
allowed-tools: Bash, Read, Write, AskUserQuestion
---
# MolMIM NIM
Generate, sample, embed, and decode small molecules with MolMIM. Use this
`SKILL.md` for first-pass hosted/local usage; load supplemental files only when
needed:
- `references/api.md`: endpoints, schema, Docker flags, response fields.
- `references/science.md`: use cases, strengths, limits, and handoffs.
- `references/parameters.md`: generation, sampling, and optimization effects.
- `references/validation.md`: SMILES/property/artifact checks.
- `references/examples.md`: compact hosted/local request patterns.
## Choose Mode
Ask only when context is unclear:
> Hosted NVIDIA API or local Docker NIM?
- Hosted generation: `https://health.api.nvidia.com/v1/biology/nvidia/molmim/generate`
- Local generation: `http://localhost:8000/generate`
- Local embedding: `http://localhost:8000/embedding`
- Local hidden state: `http://localhost:8000/hidden`
- Local decode: `http://localhost:8000/decode`
- Local sampling: `http://localhost:8000/sampling`
- Local readiness: `http://localhost:8000/v1/health/ready`
Mode difference: the hosted API reference exposes `/generate`; the local
container exposes the broader latent-space workflow (`/embedding`, `/hidden`,
`/decode`, `/sampling`, `/generate`). Do not invent hosted latent endpoints.
Hosted requests use `Authorization: Bearer $NGC_API_KEY`. Local inference uses
no auth header after readiness.
## Local Docker
Use shell env first; source repo-root `.env` only if present. Do not print keys.
MolMIM docs use `NGC_CLI_API_KEY` for the local container; this repo accepts
`NGC_API_KEY` or `NVIDIA_API_KEY` and maps to `NGC_CLI_API_KEY` for startup.
Mount `LOCAL_NIM_CACHE` at `/home/nvs/.cache/nim`.
```bash
set -a
[ -f .env ] && . ./.env
set +a
if [ -z "${NGC_API_KEY:-}" ] && [ -n "${NVIDIA_API_KEY:-}" ]; then
export NGC_API_KEY="$NVIDIA_API_KEY"
fi
if [ -z "${NGC_CLI_API_KEY:-}" ] && [ -n "${NGC_API_KEY:-}" ]; then
export NGC_CLI_API_KEY="$NGC_API_KEY"
fi
: "${NGC_CLI_API_KEY:?Set NGC_API_KEY, NVIDIA_API_KEY, or NGC_CLI_API_KEY}"
: "${LOCAL_NIM_CACHE:?Set LOCAL_NIM_CACHE}"
echo "$NGC_CLI_API_KEY" | docker login nvcr.io --username '$oauthtoken' --password-stdin
export NIM_TEST_GPU="${NIM_TEST_GPU:-0}"
mkdir -p "${LOCAL_NIM_CACHE}"
chmod 777 "${LOCAL_NIM_CACHE}"
docker run --rm -it --name molmim \
--runtime=nvidia \
-e CUDA_VISIBLE_DEVICES="${NIM_TEST_GPU}" \
-e NGC_CLI_API_KEY \
-v "${LOCAL_NIM_CACHE}:/home/nvs/.cache/nim" \
-p 8000:8000 \
nvcr.io/nim/nvidia/molmim:1.0.0
```
Readiness check:
```bash
until curl -sf http://localhost:8000/v1/health/ready; do sleep 5; done
```
Local embedding smoke test after readiness. Local inference uses no
`Authorization` header:
```python
import requests
seed = "CN1C=NC2=C1C(=O)N(C(=O)N2C)C"
response = requests.post(
"http://localhost:8000/embedding",
headers={"Content-Type": "application/json"},
json={"sequences": [seed]},
timeout=60,
)
response.raise_for_status()
embedding_data = response.json()
embeddings = embedding_data["embeddings"]
print(f"received {len(embeddings)} embedding vector(s)")
```
## Hosted Generation Pattern
Use hosted `/generate` for seed-SMILES generation or optimization. Use
`algorithm: "CMA-ES"` for guided property optimization and `algorithm: "none"`
for unguided sampling around the seed.
```python
import os
import requests
hosted = True
url = (
"https://health.api.nvidia.com/v1/biology/nvidia/molmim/generate"
if hosted else "http://localhost:8000/generate"
)
headers = {"Content-Type": "application/json"}
if hosted:
headers["Authorization"] = f"Bearer {os.environ['NGC_API_KEY']}"
payload = {
"smi": "CN1C=NC2=C1C(=O)N(C(=O)N2C)C",
"algorithm": "CMA-ES",
"num_molecules": 10,
"property_name": "QED",
"minimize": False,
"min_similarity": 0.4,
"particles": 8,
"iterations": 3,
}
response = requests.post(url, headers=headers, json=payload, timeout=180)
response.raise_for_status()
result = response.json()
```
Generation gotchas:
- Field name is `smi`, not `smiles`.
- `algorithm` is `"CMA-ES"` or `"none"`.
- `property_name` is `"QED"` or `"plogP"`.
- `num_molecules` is 1-100. `iterations` is 1-1000. `particles` is 2-1000.
- `min_similarity` is 0-1 in the hosted API reference; local docs emphasize
common values up to 0.7 for constrained optimization.
- `scaled_radius` is 0-2 and is mainly used with `algorithm: "none"` or local
`/sampling`.
## Local Latent Workflow
Use local-only endpoints for embedding, hidden-state manipulation, and decode.
This is also the surface used by the guided optimization example package.
For local latent workflows, state explicitly that the hosted API reference
exposes `/generate`; `/embedding`, `/hidden`, `/decode`, and `/sampling` are
local-only in the current docs.
```python
seed = "CC(Cc1ccc(cc1)C(C(=O)O)C)C"
base = "http://localhost:8000"
headers = {"Content-Type": "application/json"}
embedding = requests.post(
f"{base}/embedding",
headers=headers,
json={"sequences": [seed]},
timeout=60,
)
embedding.raise_for_status()
embedding_data = embedding.json()
embeddings = embedding_data["embeddings"]
print(f"received {len(embeddings)} embedding vector(s)")
hidden = requests.post(
f"{base}/hidden",
headers=headers,
json={"sequences": [seed]},
timeout=60,
)
hidden.raise_for_status()
hidden_data = hidden.json()
hiddens = hidden_data["hiddens"]
mask = hidden_data["mask"]
decoded = requests.post(
f"{base}/decode",
headers=headers,
json={"hiddens": hiddens, "mask": mask},
timeout=60,
)
decoded.raise_for_status()
sampled = requests.post(
f"{base}/sampling",
headers=headers,
json={"sequences": [seed], "num_molecules": 10, "scaled_radius": 0.7},
timeout=60,
)
sampled.raise_for_status()
```
## Save And Validate Output
Save generated SMILES and validate before using them downstream.
```python
from pathlib import Path
import json
def molmim_smiles(result):
values = []
if isinstance(result.get("generated"), list):
for item in result["generated"]:
if isinstance(item, str):
values.append(item)
elif isinstance(item, list):
values.extend(x for x in item if isinstance(x, str))
molecules = result.get("molecules")
if isinstance(molecules, str):
molecules = json.loads(molecules)
if isinstance(molecules, list):
for item in molecules:
if isinstance(item, dict) and isinstance(item.get("sample"), str):
values.append(item["sample"])
return values
generated = molmim_smiles(result)
if not generated:
raise RuntimeError(f"MolMIM returned no generated molecules: {result}")
Path("molmim_response.json").write_text(json.dumps(result, indent=2))
Path("molmim_generated.smi").write_text("\n".join(generated) + "\n")
for i, smiles in enumerate(generated, start=1):
print(i, smiles)
```
Use RDKit when available to check parseability, uniqueness, simple property
ranges, and whether seed similarity constraints are plausible. Generated
molecules are candidates, not validated hits; use downstream property, docking,
affinity, toxicity, and synthetic-feasibility checks before prioritization.
## Troubleshooting
- Hosted `404` on `/embedding`, `/hidden`, `/decode`, or `/sampling`: those
endpoints are local-only in the docs.
- `401`: missing or unauthorized NGC key for hosted requests.
- Hosted response parsing: live hosted `/generate` may return `molecules` as
a JSON string of `{sample, score}` objects, while local endpoints may return
`generated`; parse both.
- `422`: invalid SMILES, unsupported `algorithm`, invalid `property_name`, or
parameter outside documented ranges.
- Local startup auth: set `NGC_CLI_API_KEY`, or set `NGC_API_KEY`/`NVIDIA_API_KEY`
and map it as shown above.
- Local startup cache misses: mount `LOCAL_NIM_CACHE` to `/home/nvs/.cache/nim`,
not `/opt/nim/.cache`.
SHA-256: 9ea44aa921413a8ffd977c686c3ed2cb376d536d5725c5eb77ffc9ea49a2a414