Agent skill
funding-signal-monitor
Monitor web sources for Series A-C funding announcements.
Filed under Prospecting and list building.
From edupegoretti/fluidz-skills · 116 skills · 0 · pushed 2026-03-11
What it does when it runs
Monitor web sources for Series A-C funding announcements. Aggregates signals from TechCrunch, Crunchbase (via web search), Twitter, Hacker News, and LinkedIn. Filters by stage, amount, and industry. Returns qualified recently-funded companies ready for outreach.
Read from the skill and the 2 files bundled beside it. A skill’s own description is written to be selected by an agent, so it describes the job and not the dependencies.
- Keys and connectors you must supply
- APIFY_API_TOKEN
- Hosts it reaches
- console.apify.com
- hn.algolia.com
- news.ycombinator.com
- www.crunchbase.com
- Tool permissions it declares
- No
allowed-toolsin the frontmatter. It does act, so it runs under whatever permissions your session already grants. - Actions present in the files
- shellnetwork
Install it
View source on GitHub ↗git clone --depth 1 --filter=blob:none --sparse https://github.com/edupegoretti/fluidz-skills.git /tmp/fluidz-skills git -C /tmp/fluidz-skills sparse-checkout set "skills/composites/funding-signal-monitor" mkdir -p ~/.claude/skills/funding-signal-monitor cp -R "/tmp/fluidz-skills/skills/composites/funding-signal-monitor/." ~/.claude/skills/funding-signal-monitor/
Picked up without a restart. A project skill of the same name is shadowed by your personal one. For one repository only, swap ~/.claude/skills for .claude/skills. Claude Code docs ↗
The folder is the same in every client that implements the format — 46 of them — so if yours is not above, only the destination changes.
Before you install: this skill will not complete its job on a bare agent. It needs APIFY_API_TOKEN, which you have to obtain separately.
The skill
Source on GitHub ↗Reproduced in full from edupegoretti/fluidz-skills/blob/a2cf697e2e8ec2ea517d85496e2d5c7f5dc44cd3/skills/composites/funding-signal-monitor/SKILL.md, which is licensed MIT (repository). 1,301 words, 26 headings.
Funding Signal Monitor
Detect recently-funded startups as buying signals. When a company raises a round, they have fresh capital, aggressive growth plans, and urgent needs for tools and services. This skill finds those companies across multiple sources, qualifies them, and outputs a ranked list ready for outreach.
Why This Works
When a company announces funding, they've:
- Received capital earmarked for growth (hiring, tooling, infrastructure)
- Committed to investors on aggressive milestones
- Entered a 12-18 month sprint to hit next-stage metrics
- Begun evaluating vendors immediately (the "post-raise buying window" is 1-3 months)
Series A-C companies are the sweet spot: enough money to buy, small enough to move fast.
Cost
| Component | Cost |
|---|---|
| Web Search (WebSearch tool) | Free |
| Hacker News (Algolia API) | Free |
| Twitter scraper (Apify) | ~$0.05-0.10 per run |
| Reddit scraper (Apify) | ~$0.05-0.10 per run |
Typical run: $0.10-0.20 total. Web Search + HN are free and provide the bulk of results.
Setup
1. Dependencies
pip3 install requests
2. Apify API Token (for Twitter/Reddit scrapers)
export APIFY_API_TOKEN="apify_api_YOUR_TOKEN_HERE"
Not required if you only want Web Search + HN results.
Usage
Phase 1: Configuration
Accept parameters from the user:
| Parameter | Required | Default | Description |
|---|---|---|---|
| target-stages | Yes | — | Comma-separated: "Series A, Series B, Series C" |
| target-industries | No | all | Filter: "SaaS, AI, fintech, healthtech" |
| min-amount | No | none | Minimum raise amount (e.g., "$5M") |
| lookback-days | No | 7 | How far back to search |
| output-path | No | stdout | Where to save the markdown report |
Phase 2: Multi-Source Search
Run these searches in parallel to maximize coverage:
A) Web Search (WebSearch tool)
Run 4-6 queries using the WebSearch tool. Vary the phrasing to catch different announcement styles:
"Series A announced this week 2026""Series B funding round 2026""startup raised Series A""seed funding announcement startup""[industry] startup funding"(if industry filter specified)"raised $" AND "Series" AND "2026"
For each result, extract:
- Company name
- Amount raised
- Stage (Seed, A, B, C, etc.)
- Date of announcement
- Lead investors
B) Twitter Search (twitter-scraper)
python3 skills/twitter-scraper/scripts/search_twitter.py \
--query "\"excited to announce\" AND (\"raised\" OR \"Series A\" OR \"Series B\" OR \"funding\")" \
--since <7-days-ago> --until <today> --max-tweets 50 --output json
Funding announcements often break on Twitter first. Founders post "excited to announce" or "thrilled to share" when rounds close.
C) Hacker News (funding-signal-monitor helper script)
python3 skills/funding-signal-monitor/scripts/search_funding.py \
--stages "Series A,Series B" --days 7 --min-points 5 --output json
Or use the hacker-news-scraper directly:
python3 skills/hacker-news-scraper/scripts/search_hn.py \
--query "raised funding Series" --days 7 --output json
D) Reddit Search (reddit-scraper)
python3 skills/reddit-scraper/scripts/search_reddit.py \
--subreddit "startups,SaaS,technology" \
--keywords "raised,Series A,Series B,funding round" \
--days 7 --sort hot --output json
Phase 3: Consolidation & Qualification
After collecting results from all sources:
-
Deduplicate across sources. Same company appearing in multiple sources = higher confidence signal.
-
For each company, assess:
Criterion How to Evaluate Stage Seed, A, B, C, or later — must match target-stages Amount raised Parse from announcement — filter by min-amount if specified Industry Infer from company description — filter if target-industries specified Cloud likelihood Tech/SaaS/AI companies = high; traditional industries = lower Team size estimate Series A = 10-30, Series B = 30-100, Series C = 100-300 Recency More recent = more urgent buying window -
Score each company:
- +3 points: Appears in multiple sources
- +2 points: Stage matches target exactly
- +2 points: Industry matches target
- +1 point: High cloud likelihood (tech/SaaS/AI)
- +1 point: Announced within last 3 days
- -1 point: Stage is outside target range
- -2 points: Non-tech industry (unless specifically targeted)
-
Rank by score descending.
Phase 4: Output
Produce a ranked report with the following columns:
| Column | Description |
|---|---|
| Rank | Score-based ranking |
| Company | Company name |
| Amount | Amount raised |
| Stage | Funding stage |
| Date | Announcement date |
| Investors | Lead investors |
| Industry | Company's industry/vertical |
| Source(s) | Where the signal was found (web, Twitter, HN, Reddit) |
| Cloud Likelihood | High / Medium / Low |
| Outreach Angle | Suggested approach based on stage and industry |
Outreach angle templates:
- "Scale fast with fresh capital" — Best for Series A. They're building the team and need tools to move fast before the money runs out.
- "Operationalize before the next round" — Best for Series B. They need to professionalize processes before Series C diligence.
- "Enterprise-ready at scale" — Best for Series C. They're going upmarket and need enterprise-grade tooling.
Save to the specified output path as markdown, or print to stdout.
Optionally export to Google Sheet using the google-sheets-write capability.
Helper Script
A standalone Python script is included for searching Hacker News specifically for funding signals:
# Search HN for Series A and B announcements in last 7 days
python3 skills/funding-signal-monitor/scripts/search_funding.py \
--stages "Series A,Series B" --days 7 --output json
# Filter to high-engagement posts only
python3 skills/funding-signal-monitor/scripts/search_funding.py \
--stages "Series A,Series B,Series C" --days 14 --min-points 10 --output text
# Search all stages with industry keyword
python3 skills/funding-signal-monitor/scripts/search_funding.py \
--stages "Series A" --days 7 --keywords "AI,fintech" --output json
AI Agent Integration
When using this skill as an agent, the typical flow is:
- User specifies target stages, optional industry filter, optional min amount
- Agent runs multi-source search (Phase 2) in parallel
- Agent consolidates and scores results (Phase 3)
- Agent presents ranked list with outreach angles
- User selects companies to pursue
- Agent chains to
company-contact-finderto find decision-makers - Agent chains to
setup-outreach-campaignto launch outreach
Example prompt:
"Find companies that raised Series A or B in the last week. Focus on SaaS and AI companies. We sell developer tools."
The agent should:
- Run all source searches
- Consolidate and score
- Present the top 10-15 companies with reasoning
- Suggest next steps (find contacts, launch outreach)
The agent should NOT:
- Do any outreach without user confirmation
- Skip the scoring/qualification step
- Rely on a single source (multi-source coverage is the point)
Tips
- Run weekly for best coverage. Funding announcements have a ~1 week news cycle.
- Combine with
company-contact-finderto get CTO/VP Eng contacts at funded companies. - Chain into
setup-outreach-campaignfor automated outreach with funding-specific angles. - Track hits in
contact-cacheto avoid duplicate outreach across weeks. - Web Search is your best source — it aggregates TechCrunch, Crunchbase, VentureBeat, etc. Twitter and HN provide supplementary signals and early detection.
- Multi-source appearances are the strongest signal. A company that shows up on TechCrunch AND Hacker News AND Twitter is a higher-quality lead.
Troubleshooting
"No results found"
- Broaden your stages (add Seed or Series C)
- Extend lookback to 14 or 30 days
- Remove industry filter
- Check that scraper dependencies are installed
"Too many results"
- Add an industry filter
- Increase min-amount
- Reduce lookback days
- Focus on Series B+ (fewer but larger rounds)
"Twitter scraper failing"
- Check APIFY_API_TOKEN is set
- Fall back to Web Search + HN only (still effective)
- Twitter is supplementary — the skill works without it
Links
- HN Algolia API
- Apify Console
- Crunchbase (for manual verification)
Files bundled with it
These load only when the skill asks for them, so they cost nothing until it runs.
Other skills for the same job
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- signal-scanner by Othmane-Khadri · 55
- niche-signal-discovery by getaero-io · 54
- signal-scout by julienamorgan · 9
- signal-scout by julienamorgan · 9
Need help setting it up?
This page tells you what funding-signal-monitor does and what it needs. Cheetah builds the agent setup it runs inside: data, CRM, sequencing and the guardrails.
Book a call →The directory stays free. There is nothing gated behind this.