Product Data Scientist

Posted 2 Days Ago
Be an Early Applicant
Hiring Remotely in México
Remote
Senior level
Software • Consulting
The Role
Embedded product data scientist supporting a home improvement lending product. Responsibilities include product analytics, A/B and quasi-experimental testing, metrics and instrumentation design, SQL/dbt data modeling, statistical and machine learning models, funnel and risk analysis, AI-assisted analytics, and communicating actionable recommendations to product and engineering stakeholders.
Summary Generated by Built In

Job Title: Product Data Scientist

Key Skills: Python or R, SQL, Data

Experience: 6+ years

Location: Mexico

Mode: Remote

We at Coforge are hiring Position (17739-PE-MX-TM2-6) with the following skill set.

This role sits at the intersection of product analytics, experimentation, and data science — embedded directly with Product Management to help shape and grow our Home Improvement lending product. You’ll be the analytical backbone for a product team making high-stakes decisions about underwriting funnels, borrower experience, and growth, translating messy data into clear evidence and, where it counts, into models and instrumentation that ship. It’s a high-impact role for someone who is equally comfortable running a rigorous A/B test, writing a dbt model, and explaining a lift curve to a VP.

Responsibilities
  • Partner day-to-day with Home Improvement Product Managers as their embedded data science and analytics resource — turning open-ended product questions into structured analyses and clear recommendations
  • Design, run, and interpret experiments (A/B and quasi-experimental) across the borrower funnel — from offer presentment through origination — with rigor around power, sample ratio mismatch, novelty effects, and interaction risk across concurrent tests
  • Define and own the metrics framework for the Home Improvement product line: north-star and guardrail metrics, funnel and cohort definitions, and the instrumentation needed to measure them reliably
  • Work with engineering to ensure event tracking and logging are complete, accurate, and well-documented at the point of instrumentation, not discovered as gaps after the fact
  • Build and maintain data pipelines and models (e.g., SQL/dbt transformations, feature pipelines) well enough to be self-sufficient for most analyses and to collaborate credibly with data engineering on the rest
  • Develop and validate statistical and ML models supporting product decisions — response/propensity models, funnel drop-off and conversion models, segmentation, and early-stage risk or pricing signals in partnership with credit strategy — with attention to fairness, explainability, and regulatory context appropriate to a lending business
  • Bring AI fluency to the work: use LLM- and agentic-tooling to accelerate exploratory analysis, requirements gathering, and documentation, while knowing where automated outputs need human judgment and validation before they inform a decision
  • Communicate findings in a way that drives action — clear write-ups, well-chosen visualizations, and recommendations tied to specific product or roadmap decisions, not just descriptive dashboards
  • Contribute to PI planning and roadmap discussions by sizing opportunities, flagging measurement risk in proposed initiatives, and helping the team commit to work that can actually be evaluated
  • Continuously monitor product and experiment performance post-launch, and proactively surface anomalies, regressions, or new opportunities rather than waiting to be asked
Required Qualifications
  • 5+ years of experience in a hybrid analytics/data science role (e.g., analytics consulting, product data science, applied statistics) with a track record of directly informing product decisions; bachelor’s degree or higher in a quantitative field, or equivalent combination of education and experience
  • You have strong grounding in statistics and experimentation — hypothesis testing, causal inference, experiment design, and you can explain the difference between a significant result and a meaningful one
  • You’re fluent in SQL and at least one scripting/statistical language (Python or R), and you’re comfortable enough with data engineering fundamentals (pipelines, transformations, data modeling) to build what you need and partner effectively with engineers on the rest
  • You can develop, validate, and communicate the tradeoffs of statistical and machine learning models, and you know when a simpler model or a well-designed experiment beats a complex one
  • You use AI tools in your day-to-day work — for exploratory analysis, documentation, and accelerating routine analytics — and you know when their outputs need scrutiny before they touch a product decision
  • You think like a consultant: you get to the real question behind the question, structure ambiguous problems, and land on recommendations stakeholders can act on
  • You have good judgment about rigor versus speed, and you don’t cut corners on measurement integrity just to hit a deadline
  • You’re a clear communicator who can flex between a technical conversation with engineering and a decision-focused conversation with product and business stakeholders
  • You’re curious about how data, experimentation, and AI can change what’s possible in consumer lending products, and you’re always looking for a better way to answer the question
Nice to have
  • Background in fintech, consumer lending, or home improvement/contractor financing
  • Experience with CDP platforms, event instrumentation tooling (e.g., Segment, mParticle, Amplitude), or experimentation platforms
  • Hands-on experience with credit or risk modeling, pricing strategy, or marketing decisioning
  • Experience with dbt, Airflow, or similar data pipeline/orchestration tools
  • Prior experience embedded directly with product teams in an agile/scrum environment

Posted On: September 8, 2026

At Coforge, we hire professionals based solely on their skills and do not discriminate based on age, disability, religion, gender, sexual orientation, socioeconomic status, or nationality.

Skills Required

  • 5+ years of experience in a hybrid analytics or data science role informing product decisions
  • Bachelor’s degree or higher in a quantitative field, or equivalent education and experience
  • Strong knowledge of statistics, hypothesis testing, causal inference, and experiment design
  • Fluency in SQL and at least one scripting or statistical language, Python or R
  • Data engineering fundamentals, including pipelines, transformations, and data modeling
  • Ability to develop, validate, and communicate statistical and machine learning model tradeoffs
  • Experience using AI tools for exploratory analysis, documentation, and analytics acceleration
  • Ability to structure ambiguous problems and provide actionable recommendations
  • Strong communication skills with technical and business stakeholders
  • Fintech, consumer lending, or home improvement/contractor financing experience
  • Experience with CDP, event instrumentation, or experimentation platforms
  • Experience with credit or risk modeling, pricing strategy, or marketing decisioning
  • Experience with dbt, Airflow, or similar pipeline and orchestration tools
  • Experience embedded with product teams in an agile or Scrum environment

Encora Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Encora and has not been reviewed or approved by Encora.

  • Healthcare Strength Health coverage is described as employer-provided in multiple locations, with private plans and family coverage highlighted in Spain and Mexico. Medical insurance quality is presented as a recurring bright spot alongside standard coverage.
  • Leave & Time Off Breadth Time off includes paid holidays and PTO, with regional materials indicating additional leave provisions in certain countries. Leave is generally portrayed as conventional to generous depending on location.
  • Flexible Benefits Work-from-home flexibility is frequently highlighted as a plus, though it varies by role and client needs. Remote and hybrid options are positioned as part of the overall package.

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The Company
Chennai
7,456 Employees
Year Founded: 1980

What We Do

Headquartered in Santa Clara, California, and backed by renowned private equity firms Advent International and Warburg Pincus, Encora is the preferred technology modernization and innovation partner to some of the world’s leading enterprise companies. It provides award-winning digital engineering services including Product Engineering & Development, Cloud Services, Quality Engineering, DevSecOps, Data & Analytics, Digital Experience, Cybersecurity, and AI & LLM Engineering. Encora's deep cluster vertical capabilities extend across diverse industries, including HiTech, Healthcare & Life Sciences, Retail & CPG, Energy & Utilities, Banking Financial Services & Insurance, Travel, Hospitality & Logistics, Telecom & Media, Automotive, and other specialized industries. With over 9,000 associates in 47+ offices and delivery centers across the U.S., Canada, Latin America, Europe, India, and Southeast Asia, Encora delivers nearshore agility to clients anywhere in the world, coupled with expertise at scale in India. Encora’s Cloud-first, Data-first, AI-first approach enables clients to create differentiated enterprise value through technology

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