Principal Data Scientist, Quantitative Intelligence

Analytic Recruiting Inc.
United States
3 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
10 years minimum
Working hours
Regular working hours

Tech stack

Cloud Database Python (Programming Language) SQL Databases Transaction Data Supervised Learning Machine Learning Operations

Job description

A leading transaction data intelligence firm powering spend analytics, marketing measurement, and predictive modeling for Fortune 500 clients is hiring a Principal Data Scientist to build the downstream statistical and predictive intelligence that powers their products. You’ll ship end-to-end ML systems, develop rigorous statistical methodologies, and build predictive models on large scale consumer transaction data. This role is hands on, deeply technical, and central to how we transform cleaned and resolved spend data into high value insights.

What you’ll do

  • Ship end-to-end ML solutions: research to modeling to production
  • Build statistical frameworks (balancing, normalization, paneling, cohorting)
  • Develop predictive models for spend forecasting, propensity, churn, and behavioral embeddings
  • Create causal measurement systems (synthetic controls, uplift, incrementality)
  • Apply privacy preserving ML (DP, cleanrooms, aggregation thresholds)
  • Drive production pipelines and governed model outputs
  • Mentor senior/staff scientists and represent methodology to stakeholders

Requirements

  • 10+ years in ML/statistics with deep hands-on leadership for financial services
  • Credit card or financial transaction data experience
  • Strong foundation in weighting, calibration, bias correction
  • Expertise in supervised learning, forecasting, behavioral/tabular data
  • Causal inference experience (synthetic control, uplift, incrementality)
  • Production engineering skills (Python, SQL, cloud data warehouses)
  • Experience with large scale ML pipelines and evaluation frameworks
  • Excellent communication and methodological rigor
  • Representation learning / embeddings
  • Privacy preserving ML and cleanroom workflows

Keywords: ML Scientist, Statistical Modeling, Predictive Modeling, Paneling, Normalization, Cohorting, Causal Inference, Synthetic Control, Uplift Modeling, Transaction Data, Behavioral Modeling, Forecasting, Representation Learning, Privacy Preserving ML, Cleanrooms, Production ML Pipelines

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