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LinkedIn Data Export Scraper

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LinkedIn Data Export Scraper

LinkedIn Data Export Scraper

Keep LinkedIn job records with titles, companies, locations, descriptions, and source links. Start with LinkedIn URLs; each returned record keeps titles, authors, companies, date, and descriptions.

Pricing

from $1.14 / 1,000 recruiters

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ReapX

ReapX

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Keep LinkedIn job records with titles, companies, locations, descriptions, and source links. Start with LinkedIn URLs; each returned record keeps titles, authors, companies, date, and descriptions.

LinkedIn Data Export Scraper source page and returned record

What it returns

Each row keeps the LinkedIn source record beside the fields needed to use it. The opening set is title, url, description, author, publishedAt, image, job_id, company, location, link, apply_link, and easy_apply. The complete schema is declared before the run, and dataset views keep related fields together without changing the underlying row.

Input

LinkedIn Data Export Scraper published input controls

LinkedIn Data Export Scraper input-to-run walkthrough

LinkedIn Data Export Scraper accepts source URLs. Run controls stay in the same form.

FieldWhat it controlsStarting value
startUrlsEnter LinkedIn URLs or search terms, one per line.["software engineer","https://www.linkedin.com/company/stripe","linkedin general data"]
maxItemsStop after this many dataset rows.100
maxSecondsStop after this many seconds and keep completed rows.240
includeEmptyKeep empty-result records in the returned record.false

Example input

{
"startUrls": [
"software engineer",
"https://www.linkedin.com/company/stripe",
"linkedin general data"
],
"maxItems": 3,
"maxSeconds": 240,
"includeEmpty": false
}

No field is required. Start with the filled example, then replace only the target values needed for the job. Run controls can stay at their starting values for the first collection.

Dataset fields

LinkedIn Data Export Scraper declared output schema

FieldType
title`string
url`string
description`string
author`string
publishedAt`string
image`string
job_id`string
company`string
location`string
link`string
apply_link`string
easy_apply`string
date`string
scrapedAt`string

Dataset views

Views are working surfaces for review and export. They select and order fields while leaving the stored row unchanged.

ViewOpening fields
overviewtitle, author, job_id, description, location, image, publishedAt, and date
identitytitle, author, and job_id
contenttitle, author, url, and description
locationtitle, author, url, and location
mediatitle, author, url, and image
timingtitle, author, url, publishedAt, date, and scrapedAt

Output and exports

OutputTypeDestination
resultsstring{{links.apiDefaultDatasetUrl}}/items
jsonstring{{links.apiDefaultDatasetUrl}}/items?clean=true&format=json
csvstring{{links.apiDefaultDatasetUrl}}/items?clean=true&format=csv
excelstring{{links.apiDefaultDatasetUrl}}/items?clean=true&format=xlsx
jsonlstring{{links.apiDefaultDatasetUrl}}/items?clean=true&format=jsonl

Completed rows are available in the Apify dataset as JSON, CSV, Excel, and JSONL exports. The run output also carries the declared links above for API clients and automations.

Pricing

$2 per 1,000 dataset items on the Free plan. Other Apify plans use the rates shown in the Pricing tab.

Console, API, schedules, and MCP

LinkedIn Data Export Scraper API and MCP invocation

Runs can begin in Apify Console, from a saved task, or through the Actor API. A schedule can reuse the same input, and a run-finished webhook can pass the dataset or run ID to the next system.

POST https://api.apify.com/v2/acts/jteDp5Qo9nhKjrtVU/runs
GET https://api.apify.com/v2/datasets/{datasetId}/items

For MCP selection, use LinkedIn Data Export Scraper. Its machine entry carries the same description, input field names, no-required-field contract, output types, dataset fields, views, and pricing facts as this document.

Saved tasks

Twenty saved-task products cover distinct lookup, comparison, research, operations, automation, and export jobs:

  • LinkedIn Data Export link full record: buyer-job; opens overview.
  • LinkedIn Data Export authors job ID identity: buyer-job; opens identity.
  • LinkedIn Data Export titles description set: buyer-job; opens content.
  • LinkedIn Data Export locations and links place routing: buyer-job; opens location.
  • LinkedIn Data Export media images creative set: buyer-job; opens media.
  • LinkedIn Data Export publication publishing file: buyer-job; opens timing.
  • LinkedIn Data Export link and images detail handoff: buyer-job; opens overview.
  • LinkedIn Data Export job ID index: buyer-job; opens identity.
  • LinkedIn Data Export descriptions and titles reading list: buyer-job; opens content.
  • LinkedIn Data Export location locations coverage view: buyer-job; opens location.
  • LinkedIn Data Export images media asset list: buyer-job; opens media.
  • LinkedIn Data Export timing dates time window: buyer-job; opens timing.
  • LinkedIn Data Export core link detail file: buyer-job; opens overview.
  • LinkedIn Data Export authors and job ID lookup: buyer-job; opens identity.
  • LinkedIn Data Export content titles text file: buyer-job; opens content.
  • LinkedIn Data Export locations location map: buyer-job; opens location.
  • LinkedIn Data Export images titles media: buyer-job; opens media.
  • LinkedIn Data Export collection times timing date order: buyer-job; opens timing.
  • LinkedIn Data Export link core record view: buyer-job; opens overview.
  • LinkedIn Data Export identity job ID match file: buyer-job; opens identity.

Integrations

Use the dataset API from any HTTP client, export rows to a spreadsheet, or send the run ID through an Apify webhook. Saved tasks give schedules and automation tools a stable input without changing the Actor contract.

When a run needs attention

  • No rows: Open the target in a browser, check spelling and source visibility, then retry the saved example before widening the input.
  • A field is empty: Check the field beside its source URL. A missing source value stays empty instead of being replaced with a guess.
  • A target fails: Keep successful targets in the dataset, then retry only the affected input.
  • An automation cannot find results: Read the dataset ID from the run and request its items endpoint directly.

FAQ

What do I get back from one run?

One row per general with 14 declared fields, opening on title, url, description and author. The schema is published before the run, so you know the shape before you spend anything.

Do I need a linkedin account or login?

No. The run works from the linkedin sources you supply in the input. Nothing is posted, changed or accessed on your behalf.

What does a run cost?

The current rate is shown on the Pricing tab and is charged per row you receive, so a run that finds nothing costs close to nothing. Cap the run with the item limit when you want a predictable ceiling.

Can I try it before committing budget?

Yes. Cap the run with the item limit in the input and inspect the first rows. The cap is enforced before charging, so a trial run stays a trial.

What do I put in the input?

The staged input is already usable: startUrls, maxItems and maxSeconds. Replace the staged target with your own list when you are ready to run for real.

Are any fields required?

No field is required. Every input carries a working default, so the Actor can be started as-is and refined afterwards.

What happens if a source fails mid-run?

The run continues through the remaining sources and finishes with what it collected. Partial results are still written to the dataset rather than discarded.

Can I limit how long a run takes?

Yes. The maxItems input caps the run. Use it when you need a predictable cost and a predictable finish time.

How do I report a problem?

Open an issue on the Actor with the run ID, the input you used and the field or row that needs attention. The run ID lets the exact execution be inspected.

How is this different from LinkedIn Search Scraper?

LinkedIn Data Export Scraper answers one job: Keep LinkedIn job records with titles, companies, locations, descriptions, and source links.. LinkedIn Search Scraper covers a different question on the same platform. Run both when you need both sides.

How do I read the output without scrolling through JSON?

Open the overview view on the Output tab. 6 views ship with the Actor (overview, identity, content, location, media and timing), each grouping the fields that belong to one question.

How do I get the data into my own tools?

Export the dataset as JSON, CSV, Excel or XML, call the dataset API directly, or attach a run-finished webhook and collect the dataset reference as soon as the run ends.

Can an agent or LLM call this?

Yes. LinkedIn Data Export Scraper is exposed over MCP with the same description, no-required-field input contract and output types shown here, so an agent can select and call it without a human in the loop.

Why is a value empty on some rows?

linkedin does not expose every field on every general. An absent value stays empty rather than being filled with a guess, so a row never invents a fact it did not receive.

A run returned fewer rows than I expected. Why?

The usual causes are a narrow source list, an item cap still set low, or a source that genuinely holds less than expected. Widen the input or raise the cap and run again.

Can I schedule this to run on its own?

Yes. Save the input as an Apify task and attach a schedule. Keep separate tasks when different teams need different targets or delivery paths.

Do I need to configure proxies?

No. Network access is handled inside the Actor and needs no proxy configuration from you.

How fresh is the data?

Every row is collected during the run you start, not served from a cache. Re-run the same input whenever you need the current state of a linkedin general.

Can I use the results commercially?

The Actor collects publicly accessible linkedin information. You remain responsible for how you use it, including any privacy or contractual obligations that apply to your business.

How do I compare two runs?

Keep title and url as your join key and diff the exports. The identity fields stay stable across runs, which is what makes a comparison meaningful.

Support

Use the Actor issue form for product questions, broken source routes, schema mismatches, and feedback. Include the smallest input that reproduces the problem. That is enough to locate the run and its dataset without sharing an entire working list.

Use this Actor only for data you are allowed to collect. Follow source terms, privacy law, and your own retention policy.