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Lead Data Scientist

Job in Irving, Dallas County, Texas, 75084, USA
Listing for: InfoVision Inc.
Full Time position
Listed on 2026-06-14
Job specializations:
  • IT/Tech
    Data Analyst, Data Scientist
Salary/Wage Range or Industry Benchmark: 100000 - 125000 USD Yearly USD 100000.00 125000.00 YEAR
Job Description & How to Apply Below

Job Title

Lead Data Scientist – Propensity & Segmentation (Telecom)

Location

Irving TX – Onsite

Skill
  • Data warehousing SQL Spark framework, pyspark
  • Complex
  • Big data concept
  • Data science concept
  • Core DS Fundamentals – ml datascinece
  • Advanced Cloud SQL & Tuning
  • Business-Centric Evaluation
  • Python Ecosystem
Required Machine Learning & Experience
  • Experience: 15+ years of professional experience as an applied Data Scientist building and deploying supervised and unsupervised machine learning models.
  • Core DS Fundamentals: Deep understanding of traditional ML theory, including class imbalance mitigation, feature selection, probability calibration, and experimental design.
  • Business-Centric Evaluation: Ability to evaluate models beyond standard AUC/ROC, focusing on lift charts, precision-recall curves, tier separation, and financial ROI.
  • Python Ecosystem: Advanced proficiency in Python, specifically utilizing the traditional data science stack (pandas, Num Py, scikit-learn, XGBoost, Light

    GBM) within notebook and script-based workflows.
Telecom & Geospatial Requirements (Must Have)
  • Telecom Domain Expertise: 3+ years specifically navigating telecom, broadband, wireless, or subscription-based data structures (e.g., understanding ARPU, churn cycles).
  • Geospatial Literacy: Practical experience using spatial SQL functions (e.g., Big Query GIS, PostGIS, H3/S2 spatial indexing) to join and analyze location-based data like lat/long coordinates, wire centers, or census tracts.
What You Will Do
  • Hands-on Feature Engineering: Write, debug, and optimize complex SQL queries on cloud data warehouses. You will build clean feature sets from raw, massive source tables spanning customer billing, network performance, competitive footprint, and geographic data.
  • Predictive & Behavioral Modeling: Build, calibrate, and maintain propensity and "take rate" models utilizing gradient boosted trees (e.g., XGBoost, Light

    GBM) to optimize marketing spend.
  • Customer Archetypes: Develop unsupervised clustering and segmentation frameworks to group customers and addresses, enabling hyper-personalized marketing workflows.
  • Enforce Core DS Rigor: Engineer features utilizing strict time-series windows to rigorously protect against data leakage, lookahead bias, and overfitting.
  • Model Explainability & Performance: Evaluate and explain model mechanics using SHAP and feature importance. Monitor models in production to detect and remediate data and concept drift.
  • Experimental Design: Collaborate with marketing teams to design A/B tests and randomized control trials (RCTs) to measure true incremental lift and isolate campaign performance from organic consumer behavior.
  • Deliver Actionable Outcomes: Cleanly package outputs into business-ready deliverables, including feature dictionaries, performance tier charts, and scored target lists.
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