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  1. Accueil
  2. Skills
  3. Funding Signal Monitor
Skill IAMonitor FundingSales

Funding Signal Monitor — recently funded companies as a feed — Claude Skill

Une compétence Claude pour Claude Code par Gooseworks — exécuter /funding-signal-monitor dans Claude·Mis à jour le 10 avr. 2026

Compatible avecClaude·ChatGPT·OpenClaw

Monitor web and social for Series A-C funding announcements

  • Monitors TechCrunch, Crunchbase, Twitter, HN, LinkedIn for funding news
  • Filters by stage, amount, and industry
  • Returns qualified recently-funded companies
  • Outputs ICP-ready prospecting list
  • Pairs with funding-signal-outreach for end-to-end flow

Pour qui

SDR / BDR

Research done, emails drafted, meetings booked. These skills multiply your output without sacrificing personalization.

Voir les skills de ce rôle

Ce qu'il fait

Daily funding-signal prospecting

Get a fresh list of recently-funded ICP-fit companies every morning.

Account-based outbound

Trigger outbound the day a target company gets funded — they're flush with budget and hiring.

Pipeline gap closing

Use funding signals to fill pipeline gaps when other signals are slow.

Fonctionnement

1

Take ICP filters as input

2

Monitor multiple sources for new funding announcements

3

Filter by stage, amount, and industry

4

Qualify against your ICP criteria

5

Output a ready-to-prospect list

Métriques améliorées

Lead Generation
More ICP-fit leads per week from continuous funding signal monitoring
Sales

Compatible avec

Crunchbase
manuel

Source for funding round details

Skills similaires

Suggérés automatiquement par chevauchement d'attributs. La comparaison côte à côte montre ce qui diffère.

Tout comparer (4) →

Disqualification Handling

par Gooseworks
↳funding-roundvsintent-data(Trigger signal)·mqlvsno-handoff(Handoff stage)·markdown, csvvsmarkdown, email(Output formats)

Leadership Change Outreach

par Gooseworks
↳BANTvsMEDDIC, BANT(Sales methodology)·funding-roundvsleadership-change(Trigger signal)·mqlvsmeeting-booked(Handoff stage)

Champion Move Outreach

par Gooseworks
↳BANTvsMEDDIC, BANT(Sales methodology)·funding-roundvsjob-change(Trigger signal)·mqlvsmeeting-booked(Handoff stage)
Triés par chevauchement d'attributs × différenciation. Funding Signal Monitor partage 18+ attributs avec chacun.

Envie d'utiliser Funding Signal Monitor ?

Choisissez comment commencer.

Exécuter dans Claude Code
Gratuit. Open source.

Installez et exécutez ce skill localement sur votre ordinateur.

1
Installer Claude Code

Ouvrez un terminal sur votre ordinateur et collez cette commande :

2
Installer le skill

Cela télécharge le skill avec tous ses fichiers sur votre ordinateur :

Ajoutez -g à la fin pour le rendre disponible dans tous vos projets.

3
Lancez-le

Démarrez Claude Code, puis tapez la commande :

puis
Voir la source sur GitHub
Utiliser sur ElasticFlow
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Essai gratuit de 14 jours. Annulez à tout moment.

View on GitHub

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

ComponentCost
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:

ParameterRequiredDefaultDescription
target-stagesYes—Comma-separated: "Series A, Series B, Series C"
target-industriesNoallFilter: "SaaS, AI, fintech, healthtech"
min-amountNononeMinimum raise amount (e.g., "$5M")
lookback-daysNo7How far back to search
output-pathNostdoutWhere 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:

  1. Deduplicate across sources. Same company appearing in multiple sources = higher confidence signal.

  2. For each company, assess:

    CriterionHow to Evaluate
    StageSeed, A, B, C, or later — must match target-stages
    Amount raisedParse from announcement — filter by min-amount if specified
    IndustryInfer from company description — filter if target-industries specified
    Cloud likelihoodTech/SaaS/AI companies = high; traditional industries = lower
    Team size estimateSeries A = 10-30, Series B = 30-100, Series C = 100-300
    RecencyMore recent = more urgent buying window
  3. 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)
  4. Rank by score descending.

Phase 4: Output

Produce a ranked report with the following columns:

ColumnDescription
RankScore-based ranking
CompanyCompany name
AmountAmount raised
StageFunding stage
DateAnnouncement date
InvestorsLead investors
IndustryCompany's industry/vertical
Source(s)Where the signal was found (web, Twitter, HN, Reddit)
Cloud LikelihoodHigh / Medium / Low
Outreach AngleSuggested 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:

  1. User specifies target stages, optional industry filter, optional min amount
  2. Agent runs multi-source search (Phase 2) in parallel
  3. Agent consolidates and scores results (Phase 3)
  4. Agent presents ranked list with outreach angles
  5. User selects companies to pursue
  6. Agent chains to company-contact-finder to find decision-makers
  7. Agent chains to setup-outreach-campaign to 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-finder to get CTO/VP Eng contacts at funded companies.
  • Chain into setup-outreach-campaign for automated outreach with funding-specific angles.
  • Track hits in contact-cache to 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)
ElasticFlow

Transformez votre entreprise grâce à l'automatisation des workflows alimentée par l'IA. Une plateforme unifiée pour tous vos besoins enterprise.

Suivez-nous

Plateforme

  • Fonctionnalités
  • Avantages
  • Cas d'usage
  • Bibliothèque de workflows

Cas d'usage

  • Ventes
  • Marketing
  • Finance & Juridique
  • RH

Catalogue

  • Départements
  • Rôles
  • Outils
  • Métriques
  • Plateformes

Croissance

  • Programme de parrainage
  • Partenaires

Mentions légales

  • Politique de confidentialité
  • Conditions de service
  • Politique de cookies
  • Utilisation acceptable
  • Sécurité
  • SLA

© 2026 ElasticFlow. Tous droits réservés.