tavily-cli
Set up, authenticate, update, troubleshoot, or choose between Tavily CLI web commands. Use…
Build production-ready Tavily integrations with best practices baked in. Reference documentation for developers using coding assistants (Claude Code, Cursor, etc.) to implement web search, content extraction, crawling, and research in agentic workflows, RAG systems, or
$ npx -y skills add tavily-ai/skills --skill tavily-best-practices --agent claude-codeHow it fires
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Build production-ready Tavily integrations with best practices baked in. Reference documentation for developers using coding assistants (Claude Code, Cursor, etc.) to implement web search, content extraction, crawling, and research in agentic workflows, RAG systems, or
name: tavily-best-practices description: "Build production-ready Tavily integrations with best practices baked in. Reference documentation for developers using coding assistants (Claude Code, Cursor, etc.) to implement web search, content extraction, crawling, and research in agentic workflows, RAG systems, or autonomous agents."
Tavily is a search API designed for LLMs, enabling AI applications to access real-time web data.
**Python:**
pip install tavily-python
**JavaScript:**
npm install @tavily/core
See **[references/sdk.md](references/sdk.md)** for complete SDK reference.
from tavily import TavilyClient # Uses TAVILY_API_KEY env var (recommended) client = TavilyClient() #With project tracking (for usage organization) client = TavilyClient(project_id="your-project-id") # Async client for parallel queries from tavily import AsyncTavilyClient async_client = AsyncTavilyClient()
**For custom agents/workflows:**
| Need | Method | |------|--------| | Web search results | `search()` | | Content from specific URLs | `extract()` | | Content from entire site | `crawl()` | | URL discovery from site | `map()` |
**For out-of-the-box research:**
| Need | Method | |------|--------| | End-to-end research with AI synthesis | `research()` |
response = client.search(
query="quantum computing breakthroughs", # Keep under 400 chars
max_results=10,
search_depth="advanced"
)
print(response)Key parameters: `query`, `max_results`, `search_depth` (ultra-fast/fast/basic/advanced), `include_domains`, `exclude_domains`, `time_range`
See **[references/search.md](references/search.md)** for complete search reference.
# Simple one-step extraction
response = client.extract(
urls=["https://docs.example.com"],
extract_depth="advanced"
)
print(response)Key parameters: `urls` (max 20), `extract_depth`, `query`, `chunks_per_source` (1-5)
See **[references/extract.md](references/extract.md)** for complete extract reference.
response = client.crawl(
url="https://docs.example.com",
instructions="Find API documentation pages", # Semantic focus
extract_depth="advanced"
)
print(response)Key parameters: `url`, `max_depth`, `max_breadth`, `limit`, `instructions`, `chunks_per_source`, `select_paths`, `exclude_paths`
See **[references/crawl.md](references/crawl.md)** for complete crawl reference.
response = client.map(
url="https://docs.example.com"
)
print(response)import time
# For comprehensive multi-topic research
result = client.research(
input="Analyze competitive landscape for X in SMB market",
model="pro" # or "mini" for focused queries, "auto" when unsure
)
request_id = result["request_id"]
# Poll until completed
response = client.get_research(request_id)
while response["status"] not in ["completed", "failed"]:
time.sleep(10)
response = client.get_research(request_id)
print(response["content"]) # The research reportKey parameters: `input`, `model` ("mini"/"pro"/"auto"), `stream`, `output_schema`, `citation_format`
See **[references/research.md](references/research.md)** for complete research reference.
For complete parameters, response fields, patterns, and examples:
Web search, content extraction, site crawling, URL discovery, and deep research — powered by the Tavily CLI.
Repo: tavily-ai/skills
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