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Applied Data Scientist

San Francisco, California · Hybrid · Posted 5 months ago

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Salary
Not listed
Job type
Full-time
Work mode
Hybrid
Source
Lever (employer's hiring system)

Skills mentioned

NLP, Python, SQL, Pandas, scikit-learn, TensorFlow, PyTorch, Data Science

About the role

Draup is a Series A-funded agentic AI company building the intelligence layer for how global enterprises make workforce and go-to-market decisions. We work with 250+ enterprise clients — including 5 of the Fortune 10 — processing 1B+ job descriptions, 850M+ professional profiles, and signals from 100+ labor databases.


We are now building our Silicon Valley engineering team — a small, senior group focused on next-generation AI research and product.


Location: San Francisco, SoMa — minimum 4 days per week in-office.


What you'll do


• Build and maintain ML models for classification, extraction, trend detection, and predictive scoring on large structured and unstructured datasets.

• Design experiments and benchmarks to measure model accuracy, reduce bias, and validate outputs at scale.

• Apply NLP techniques — embeddings, NER, text classification — to real-world data pipelines.

• Partner with engineering to move models from experimentation to production; own monitoring and drift detection.

• Build evaluation frameworks for AI-generated outputs across multiple product use cases.


What we require


• BS/MS in Statistics, Computer Science, Applied Mathematics, or a quantitative field.

• 3–5 years of applied data science; minimum 2 years working with NLP or large-scale text data in production.

• Strong Python (pandas, scikit-learn, PyTorch or TensorFlow); proficient in SQL.

• Demonstrated track record of shipping models into production, not just producing analysis.

• Experience with embedding models and semantic similarity at enterprise scale.

• No visa sponsorship. Must be authorized to work in the US without current or future employer sponsorship.

Job ID lv-hophr-8f90e46c-ef76-4617-ab5d-b2a429306e5b · Original posting ↗