CO - Sr. Data Scientist - 229

Thaloz

Denver (CO)

On-site

USD 130,000 - 185,000

Full time

14 days+
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Job summary

Clearco is seeking a Senior Data Scientist to shape models and analytics for risk, underwriting, and revenue decisions. The role is hands-on and sits at the intersection of Data Science, ML, and Product.

You will partner with Engineering, Product, Risk, and Finance to translate ambiguous problems into production-grade models with measurable outcomes that scale funding for eCommerce businesses.

Qualifications

  • 5+ years of professional experience in data science, ML, or related quantitative role.
  • Strong foundations in statistics and experimentation design, including hypothesis testing and causal reasoning.
  • Proven experience building and shipping predictive models (classification, regression, time series).
  • Strong Python and SQL skills; comfortable with production data workflows.
  • Excellent written communication and ability to influence across teams.

Responsibilities

  • Design and execute data science experiments, including A/B tests and offline evaluation.
  • Develop, evaluate, and iterate on predictive models for risk scoring and revenue forecasting.
  • Own model performance, drift monitoring, and data quality improvements.
  • Collaborate with Product and Engineering to productionize models and analytics.
  • Mentor teammates and promote best practices in analytics and tooling.
  • Communicate insights clearly to technical and non-technical stakeholders.

Skills

Python
SQL
Statistics
Experimentation
Data Science
Communication

Tools

BigQuery
Snowflake
dbt
MLOps

Job description

Clearco is a leader in AI and data-driven eCommerce funding, providing non-dilutive capital that helps founders grow without sacrificing equity. We are hiring a Senior Data Scientist to shape the models, experiments, and analytics that drive our risk, underwriting, and revenue decisions.

This hands-on senior role sits at the intersection of Data Science, Machine Learning, and Product. You will partner with Engineering, Product, Risk, and Finance to turn ambiguous problems into production-grade models and measurable outcomes that responsibly scale funding for eCommerce businesses.

Responsibilities
  • Design and execute data science experiments, including causal analysis, A/B tests, and offline evaluation.
  • Develop, evaluate, and iterate on predictive models for credit/risk scoring, revenue forecasting, and policy performance.
  • Own model performance and monitoring: define success metrics, investigate drift, and drive improvements to data quality and feature reliability.
  • Partner with Product Engineering to productionize models and analytics with emphasis on reliability, reproducibility, and maintainability.
  • Perform exploratory data analysis, feature engineering, and robust validation on real-world, messy data.
  • Communicate insights and recommendations clearly to technical and non-technical stakeholders through documentation and presentations.
  • Improve analytical standards, code review practices, and documentation to raise technical quality.
  • Mentor and support team members through pairing, feedback, and sharing best practices.
  • 5+ years of professional experience in data science, applied machine learning, or a related quantitative role.
  • Strong foundations in statistics and experimentation, including hypothesis testing, causal reasoning, and evaluation design.
  • Proven experience building and shipping predictive models (classification, regression, time series) and measuring real-world impact.
  • Strong proficiency in Python and SQL and comfort working with production data workflows.
  • Experience defining success metrics, aligning with stakeholders, and delivering end-to-end outcomes.
  • Strong written communication skills and a pragmatic approach to fast-moving environments.
  • Experience owning model performance, monitoring for drift, and improving feature reliability.
Nice to Have
  • Experience with credit risk, underwriting, fraud/risk signals, or financial forecasting.
  • Experience with modern data tooling and warehouses such as BigQuery or Snowflake and transformation frameworks like dbt.
  • Familiarity with MLOps patterns (model deployment, monitoring, feature stores, orchestration) and cloud environments.
  • Experience working with messy third-party data sources (banking data, eCommerce platforms, marketing signals).
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