Unknown Company

Data Scientist

cincinnati, oh • Posted 3 days ago
Onsite Full Time IT & Technology

Job Summary

We are seeking an experienced Data Scientist to drive causal inference, experimentation, measurement, personalization, and applied AI initiatives. The ideal candidate will have hands-on experience applying causal inference and econometric techniques to measure business impact, build production-ready machine learning solutions, and translate analytical insights into measurable business outcomes. Experience with Generative AI is a plus but not the primary requirement.

Key Responsibilities

  • Design and implement causal inference and causal machine learning solutions.

  • Measure the impact of business treatments on customer behavior, revenue, retention, and engagement.

  • Apply statistical methods including:

    • Difference-in-Differences

    • Matching

    • Panel Data Models

    • CATE Estimation

    • Uplift Modeling

    • Heterogeneous Treatment Effect Modeling

  • Define treatments, control groups, counterfactuals, outcome metrics, and evaluation windows.

  • Build scalable, production-ready ML pipelines using software engineering and MLOps best practices.

  • Partner with business and product teams to convert business problems into scientific solutions.

  • Develop and integrate Generative AI solutions including RAG, prompt engineering, LLM workflows, fine-tuning, and agentic AI where applicable.

  • Evaluate emerging AI/ML technologies for production adoption.

  • Present technical findings and business impact to both technical and non-technical stakeholders.

  • Provide technical guidance and code reviews to team members.

Required Qualifications

  • 3+ years of applied Data Science experience.

  • Strong experience with causal inference, causal ML, econometrics, or experimentation.

  • Experience measuring treatment effects and incremental business impact.

  • Hands-on experience with:

    • Difference-in-Differences

    • Matching

    • CATE

    • Panel Data Analysis

    • Uplift Modeling

    • Heterogeneous Treatment Effects

  • Strong Python and SQL programming skills.

  • Experience with Git.

  • Experience developing production-quality ML or analytics solutions.

  • Strong analytical, communication, and problem-solving skills.

  • Bachelor's or Master's degree in Statistics, Economics, Data Science, Computer Science, Applied Mathematics, or related quantitative field.

Preferred Qualifications

  • Experience with Generative AI, RAG, Prompt Engineering, Fine-tuning, LLM Evaluation, or Agentic AI.

  • Experience with Azure, Databricks, or similar cloud platforms.

  • Experience with MLOps, deployment, orchestration, monitoring, and model lifecycle management.

  • Experience building experimentation platforms or measurement pipelines.

  • Retail, CPG, media, personalization, loyalty, or customer analytics experience.

  • Experience mentoring technical teams.

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