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Insider Buying Signal Scraper

Pricing

$4.00 / 1,000 insider or holder filing signals

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Insider Buying Signal Scraper

Insider Buying Signal Scraper

Collect public insider and holder-change filing signals and return compact market intelligence rows for stock research.

Pricing

$4.00 / 1,000 insider or holder filing signals

Rating

0.0

(0)

Developer

Ushba Khan

Ushba Khan

Maintained by Community

Actor stats

0

Bookmarked

2

Total users

1

Monthly active users

4 days ago

Last modified

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Collect public insider and holder-change filing signals and return compact market intelligence rows for stock research.

Insider Buying Signal Scraper is built for buyers who need clean, source-backed data they can export into spreadsheets, CRMs, dashboards, alerts, or enrichment workflows. The actor focuses on the business object promised by its name and avoids dumping raw HTML, debug metadata, run timestamps, actor names, or unrelated crawl noise into successful dataset rows.

Who Uses It

  • market researchers
  • watchlist builders
  • finance analysts
  • investor relations teams

What It Extracts

  • Ticker
  • Company Name
  • Filing Date
  • Insider Name
  • Transaction Type
  • Shares
  • Value Usd
  • Filing Url

Input

Use the input fields in the Apify UI to provide the public URLs, keywords, companies, pages, profiles, tickers, topics, or source lists relevant to this actor. Keep the first run small, inspect the dataset, and then raise limits or schedule recurring runs when the rows match your workflow.

Output You Get

Successful dataset rows are compact and actor-specific. Important fields include:

  • ticker
  • companyName
  • filingDate
  • insiderName
  • transactionType
  • shares
  • valueUsd
  • filingUrl

Failure rows, when needed, include a short error or warning so you can fix bad inputs or blocked sources. Successful rows do not include unnecessary run metadata such as actor name, started time, finished time, raw input echo, or generic status noise.

Good Use Cases

  • Build focused lead lists or research tables from public sources.
  • Monitor changes and signals that matter for sales, SEO, ecommerce, marketing, product, or research workflows.
  • Export clean rows to Google Sheets, Airtable, BI tools, CRM systems, or automation pipelines.
  • Run small tests before scaling to larger scheduled jobs.

Reliability Notes

The actor uses guarded limits, request timeouts, retries where useful, and compact output rows. Public websites can change, block traffic, or hide data behind login walls; when that happens, the actor returns useful warnings instead of charging for empty success rows whenever the implementation can avoid it.