Senior Data Scientist - Predictive Modeling

prodege, llc United State
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AI Summary

We are seeking a Senior Data Scientist to develop, evaluate, and refine analytical and machine learning models that predict user behavior and optimize business outcomes. The ideal candidate will have a strong foundation in machine learning and statistical modeling, experience with ranking, recommendation systems, and personalization models, and fluency in Python and common ML libraries.

Key Highlights
Develop predictive models to improve yield management and optimize engagement and revenue
Collaborate with Analytics Engineering and Machine Learning partners
Strong communication skills to explain model results and tradeoffs to non-technical stakeholders
Key Responsibilities
Business Translation & Modeling Framework Design
Data Analysis & Feature Development
Model Development & ML Collaboration
Technical Skills Required
Python scikit-learn XGBoost/LightGBM PyTorch TensorFlow SQL Snowflake BigQuery Redshift
Benefits & Perks
Comprehensive benefits package
Flexible PTO
Paid sick leave
Eight paid holidays
Option to purchase shares of Company stock
Nice to Have
Hands-on experience managing ML deployments
Experience with AI/ML frameworks
Worked with distributed data processing frameworks

Job Description


Job Description

Strategic Imperative:

The Data Scientist role with a focus on Predictive Modeling, is responsible for developing, evaluating, and refining analytical and machine learning models that predict user behavior and optimize business outcomes across our suite of products. This role focuses on modeling, feature development, and offline evaluation to support performance marketing, insights and other strategic initiatives.

The position applies statistical and machine learning techniques to large-scale behavioral and transactional data to improve ranking, recommendation and yield optimization. While this role partners closely with Engineering and ML Engineering teams, it does not own production deployment, infrastructure, or MLOps.

Prodege

A cutting-edge marketing and consumer insights platform, Prodege has charted a course of innovation in the evolving technology landscape by helping leading brands, marketers, and agencies uncover the answers to their business questions, acquire new customers, increase revenue, and drive brand loyalty & product adoption. Bolstered by a major investment by Great Hill Partners in Q4 2021 and strategic acquisitions of Pollfish, BitBurst & AdGate Media in 2022, Prodege looks forward to more growth and innovation to empower our partners to gather meaningful, rich insights and better market to their target audiences.

As an organization, we go the extra mile to “Create Rewarding Moments” every day for our partners, consumers, and team. Come join us today!

  • We are seeking candidates who reside in the continental US. Work Visa sponsorship is available for qualified candidates. ***

Primary Objectives

  • Improve Yield Through Predictive Modeling: Drive yield optimization through the ideation and development of machine learning models for recommendations, ranking and yield optimization use cases
  • Organizational Data Science Advancement: Expand the application of machine learning across business functions through identification of opportunities and modeling, analysis, and offline evaluation.
  • Data Design: Leading feature engineering and defining key concepts to be formalized within the feature store.

Qualifications - To perform this job successfully, an individual must be able to perform each job duty satisfactorily. The requirements listed below are representative of the knowledge, skill, and/or ability required. Reasonable accommodations may be made to enable individuals with disabilities to perform the essential functions.

Detailed Job Duties: (typical monthly, weekly, daily tasks which support the primary objectives)

  • Business Translation & Modeling Framework Design:
    • Partner with Product and other business stakeholders to frame business problems into well-defined modeling objectives and hypotheses.
    • Select appropriate modeling techniques (e.g., classification, regression, deep learning, reinforcement learning) based on use case and data characteristics.
    • Define success metrics and evaluation criteria that align model performance with business impact.
    • Document modeling assumptions, tradeoffs, and intended use to ensure clarity, transparency, and alignment across teams
  • Data Analysis & Feature Development
    • Perform analysis on large-scale behavioral and transactional datasets to identify patterns, drivers, and potential predictive signal
    • Engineer features from user behavior, lifecycle activity, offer attributes, and revenue data to support modeling objectives
    • Collaborate with ML team to ensure features properly registered within feature store
  • Model Development & ML Collaboration:
    • Leverage appropriate modeling frameworks and packages to build high performing predictive models
    • Perform model tuning, validation, and comparison using appropriate metrics, cross-validation, and offline testing frameworks
    • Interpret model outputs to assess business relevance, identify strengths and limitations, and validate against observed behavior
    • Leverage appropriate frequentist and Bayesian approaches to measure model performance and define strategies for balancing exploration and exploitation
    • Document modeling approaches, performance results, and learnings in model cards to support reuse, iteration, and long-term knowledge building
    • Enable ML team to deploy models; collaborate on retraining and maintenance plans
What does SUCCESS look like?

Success in this role is demonstrated by the delivery of predictive models that materially improve yield management and optimizes engagement and revenue. Over time, success is reflected in models that are trusted by stakeholders, features that consistently capture meaningful behavioral signals, and clear evidence that model-driven decisions outperform prior approaches. Strong collaboration with Analytics Engineering and Machine Learning partners, thorough documentation of methods and learnings, and measurable business impact are hallmarks of high performance in this role.

The MUST Haves: (ex: job cannot be done without these skills, education, experience, certifications, licenses)

  • Bachelor’s or Master’s degree in Computer Science, Data Science, Statistics, Mathematics, or a related quantitative field
  • Three or more (3+) years experience performing deep data analysis and training machine learning models
  • Strong foundation in machine learning and statistical modeling (classification, regression, ranking, optimization)
  • Experience with ranking, recommendation systems, and personalization models
  • Fluency in Python and common ML libraries (scikit-learn, XGBoost/LightGBM, PyTorch, or TensorFlow)
  • Fluency in SQL and ability to work with large, event-level datasets in data warehouse environments (e.g., Snowflake, BigQuery, Redshift)
  • Experience with feature engineering, model evaluation, and performance diagnostics
  • Strong analytical reasoning and ability to translate business questions into modeling approaches
  • Clear communication skills, particularly in explaining model results and tradeoffs to non-technical stakeholders
  • Understanding of ML Ops concepts and the ability to collaborate effectively with ML Engineering and ML Ops teams 
  • Excellent attention to detail
  • Proficiency in critical thinking and problem solving.

The Nice to Haves: (preferred additional skills, education, experience, certifications, licenses)

  • Hands-on experience managing ML deployments and designing feature stores and registries
  • Experience with AI/ML frameworks such as LangChain, LLMs, and HuggingFace
  • Worked with distributed data processing frameworks (Spark, Ray, Flink, Trino).
  • Experience with ML experiment tracking (e.g., ML Flow)
  • Experience in loyalty programs or performance marketing or market research
  • Experience with contextual multi armed bandit algorithms or reinforcement learning
  • Preference modeling methods used in Conjoint/MaxDiff
  • Understanding of Bayesian statistics inference (e.g., PyMC)

Pay Transparency

The anticipated base salary range for this position is $150,000 to $180,000. The final salary offered to a successful candidate will be dependent on several factors that may include, but are not limited to; the type and length of experience within the job, type and length of experience within the industry, the type and length of knowledge and skills for the position, education, training, etc. Prodege is a multi-state employer and final compensation within this range could be impacted by work location. Please note that the compensation details listed in US role postings reflect the base salary only, and do not include bonus, equity, or benefits.

Prodege Benefits

Prodege offers a comprehensive benefits package to US Full-time employees including medical, dental, vision, STD, LTD and basic life insurance. Employees receive flexible PTO, as well as paid sick leave prorated based on hire date. US Employees have eight paid holidays throughout the calendar year. Employees receive an option to purchase shares of Company stock commensurate with their position, which vests over four years.

Equal Employment Opportunity Statement

At Prodege, we are committed to creating a diverse and inclusive environment. We are proud to be an

Equal Opportunity Employer and do not discriminate on the basis of race, color, religion, sex, sexual orientation, gender identity or expression, national origin, age, disability, veteran status, or any other characteristic protected by law. We encourage individuals of all backgrounds to apply.

FCIHO

Employers will consider for employment qualified applicants with criminal histories in a manner consistent with the requirements of FCIHO.

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