Data Scientist
AI Summary
Develops and maintains entity resolution techniques, builds LLM and ML-based extraction models, and automates scraping logic to turn unstructured data into structured, product-ready outputs at scale.
About this role
The team waiting for you:
Our Engineering team manages a powerful data platform that has unlocked a growing backlog of applied ML work. As a Data Scientist, you will take dedicated ownership of this backlog, driving initiatives like entity resolution, LLM-based structured extraction, and topic modeling. We are rapidly scaling our source acquisition and ingestion workflows, making this the perfect time to join and shape our capabilities. By turning unstructured data into structured, product-ready outputs, you will solve the core challenge of ensuring data accuracy and reliability at scale.
In this role, you will:
- Develop and maintain entity resolution techniques to match and link records across sources with inconsistent identifiers.
- Prototype, build, and evaluate LLM and ML-based extraction and inference models that turn unstructured or free-text data into structured outputs.
- Automate scraping logic and source queue generation using data-driven models to streamline and scale source acquisition workflows.
- Build, iterate on, and monitor applied ML models to proactively identify data or concept drift.
- Enrich and enhance datasets with product-ready calculated fields and derived metrics.
- Assist in building automated or ad-hoc QA validation processes to validate model output accuracy, reliability, and consistency.
Your skills & experiences
- 4+ years of previous experience as a Data Scientist, Data Analyst, or Data Engineer, with a strong background in data modeling, ML, and NLP.
- Excellent programming skills in Python, proficiency in SQL, and hands-on experience with Spark.
- Deep, structural thinking with the ability to communicate clearly and align with various stakeholders.
- A collaborative, self-driven mindset with a keen attention to detail and a propensity to dig into deeper layers to inspire improvements.
Nice to Have:
- Experience with Dagster, dbt, Superset, or Trino.
- Previous experience working closely in a team with data engineers.
- Strong business acumen and an understanding of how insights convert to value and unlock new revenue.
- Excellent written and spoken English.
Tech stack:
Salary & Benefits:
Skills
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