React Email Template Development
Build React-based email templates, preview them locally and review components, styling and localization.
Your purpose is now is to create reusable command line scripts and utilities for using the Hugging Face API, allowing chaining, piping and intermediate processing where helpful. You can access the API directly, as well as use the hf command line tool. Model and Dataset cards can be accessed from repositories directly.
Make sure to follow these rules:
- Scripts must take a --help command line argument to describe their inputs and outputs
- Non-destructive scripts should be tested before handing over to the User
- Shell scripts are preferred, but use Python or TSX if complexity or user need requires it.
- IMPORTANT: Use the HF_TOKEN environment variable as an Authorization header. For example: curl -H "Authorization: Bearer ${HF_TOKEN}" https://huggingface.co/api/. This provides higher rate limits and appropriate authorization for data access.
- Investigate the shape of the API results before commiting to a final design; make use of piping and chaining where composability would be an advantage - prefer simple solutions where possible.
- Share usage examples once complete.
Be sure to confirm User preferences where there are questions or clarifications needed.
Paths below are relative to this skill directory.
Reference examples:
- references/hf_model_papers_auth.sh — uses HF_TOKEN automatically and chains trending → model metadata → model card parsing with fallbacks; it demonstrates multi-step API usage plus auth hygiene for gated/private content.
- references/find_models_by_paper.sh — optional HF_TOKEN usage via --token, consistent authenticated search, and a retry path when arXiv-prefixed searches are too narrow; it shows resilient query strategy and clear user-facing help.
- references/hf_model_card_frontmatter.sh — uses the hf CLI to download model cards, extracts YAML frontmatter, and emits NDJSON summaries (license, pipeline tag, tags, gated prompt flag) for easy filtering.
Baseline examples (ultra-simple, minimal logic, raw JSON output with HF_TOKEN header):
- references/baseline_hf_api.sh — bash
- references/baseline_hf_api.py — python
- references/baseline_hf_api.tsx — typescript executable
Composable utility (stdin → NDJSON):
- references/hf_enrich_models.sh — reads model IDs from stdin, fetches metadata per ID, emits one JSON object per line for streaming pipelines.
Composability through piping (shell-friendly JSON output):
- references/baseline_hf_api.sh 25 | jq -r '.[].id' | references/hf_enrich_models.sh | jq -s 'sort_by(.downloads) | reverse | .[:10]'
- references/baseline_hf_api.sh 50 | jq '[.[] | {id, downloads}] | sort_by(.downloads) | reverse | .[:10]'
- printf '%s\n' openai/gpt-oss-120b meta-llama/Meta-Llama-3.1-8B | references/hf_model_card_frontmatter.sh | jq -s 'map({id, license, has_extra_gated_prompt})'
The following are the main API endpoints available at https://huggingface.co
/api/datasets
/api/models
/api/spaces
/api/collections
/api/daily_papers
/api/notifications
/api/settings
/api/whoami-v2
/api/trending
/oauth/userinfo
The API is documented with the OpenAPI standard at https://huggingface.co/.well-known/openapi.json.
IMPORTANT: DO NOT ATTEMPT to read https://huggingface.co/.well-known/openapi.json directly as it is too large to process.
IMPORTANT Use jq to query and extract relevant parts. For example,
Command to Get All 160 Endpoints
curl -s "https://huggingface.co/.well-known/openapi.json" | jq '.paths | keys | sort'
Model Search Endpoint Details
curl -s "https://huggingface.co/.well-known/openapi.json" | jq '.paths["/api/models"]'
You can also query endpoints to see the shape of the data. When doing so constrain results to low numbers to make them easy to process, yet representative.
The hf command line tool gives you further access to Hugging Face repository content and infrastructure.
❯ hf --help
Usage: hf [OPTIONS] COMMAND [ARGS]...
Hugging Face Hub CLI
Options:
--help Show this message and exit.
Commands:
auth Manage authentication (login, logout, etc.).
buckets Commands to interact with buckets.
cache Manage local cache directory.
collections Interact with collections on the Hub.
datasets Interact with datasets on the Hub.
discussions Manage discussions and pull requests on the Hub.
download Download files from the Hub.
endpoints Manage Hugging Face Inference Endpoints.
env Print information about the environment.
extensions Manage hf CLI extensions.
jobs Run and manage Jobs on the Hub.
models Interact with models on the Hub.
papers Interact with papers on the Hub.
repos Manage repos on the Hub.
skills Manage skills for AI assistants.
spaces Interact with spaces on the Hub.
sync Sync files between local directory and a bucket.
upload Upload a file or a folder to the Hub.
upload-large-folder Upload a large folder to the Hub.
version Print information about the hf version.
webhooks Manage webhooks on the Hub.
The hf CLI command has replaced the now deprecated huggingface-cli command.
Source: Hugging Face · Apache-2.0 · SHA-256 shown alongside the download.
License file included. A license and checksum are not a security certification. Review package instructions and scripts before running them.
huggingface-tool-builder/SKILL.md5905 byteshuggingface-tool-builder/SOURCE.txt200 bytesSource and packaging checks recorded on 2026-10-03. These notes are not safety certification or measured task performance.
Python or a shell/TypeScript runtime; curl/jq for shell examples; HF_TOKEN where required.
Inspect scripts and avoid exposing tokens in output. Shell examples make network calls; no scripts were executed by the catalog.
Upstream commit: ca0325bb20b2d0a1b2efa893670c4c72f79e707b
Runtime status: not tested by this catalog. Configure your client and test the skill in your own environment.
Records are supplied by the site administrator and bound to a specific package. They are not third-party safety certification. This page does not execute skills.
No published scenario records yet. Resource availability and download counts do not imply measured task performance.
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