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Work/Job data pipeline
Case study · Online learning and careers

Job listings parsed, enriched and structured by AI, not by hand.

~90%of manual parsing automated
2AI models working together
1clean, structured feed
A team working together around a table with laptops

The situation

The platform needed a steady supply of accurate job listings. Each one arrived in a different format and had to be read, cleaned up and entered by hand before it could be used.

The bottleneck

Manual parsing limited how many jobs the team could publish and made the data inconsistent. Every new source meant more repetitive work.

What we built

  • An automated ingestion pipeline that collects job information as it arrives
  • AI extraction of the key details from unstructured listings
  • Enrichment that adds useful context and consistent categories
  • Structured output ready for the platform's downstream workflows

The result

About 90 percent of the manual job parsing work is now automated, and listings arrive in a consistent structure. The team reviews instead of retyping.

The lesson: the right mix of AI models, fast where speed matters and strong where accuracy matters, keeps quality high and costs low.

Back to the start

From invoice to production floor, without retyping a thing.

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