Senior Applied Data Scientist, Fleet Intelligence

Stellenbeschreibung:


  • Deliver near-term Fleet Intelligence initiatives, including tire intelligence, utilization intelligence, ROI measurement, existing predictive models, and analytical foundations for customer-facing intelligence

  • Evaluate and develop projections or predictive models for fleet usage, maintenance cost, availability, condition and failure risk, and asset lifecycle decisions

  • Translate product questions into hypotheses, target variables, baselines, evaluation plans, and incremental delivery milestones

  • Explore maintenance, usage, cost, work-order, telematics, warranty, and asset-history data to identify predictive signals and data gaps

  • Build, validate, and operationalize models from experimentation through production monitoring and iteration

  • Define model-quality metrics, confidence thresholds, drift detection, and feedback loops

  • Partner with Product and Design to make model outputs understandable, explainable, and actionable in customer workflows

  • Establish reusable practices for experimentation, model documentation, validation, monitoring, and responsible predictive-performance claims

  • Communicate findings, tradeoffs, risks, and recommendations to technical partners, product leaders, and executives

  • Share knowledge through design reviews, documentation, pairing, and mentorship


Requirements



  • 5+ years of experience in applied data science, machine learning, statistical modeling, or a closely related role

  • Track record of developing and shipping models or decision-support systems that influenced real customer or business outcomes

  • Strong proficiency with Python and SQL, including exploratory analysis, feature engineering, model development, and evaluation on large datasets

  • Strong grounding in statistics and machine learning fundamentals, including model selection, validation, calibration, uncertainty, bias, and error analysis

  • Experience with time-series forecasting, regression, classification, ranking, anomaly detection, survival or reliability analysis, or optimization; depth in several areas more important than breadth across all

  • Experience taking models beyond notebooks into reliable production workflows, including versioning, testing, deployment, observability, performance monitoring, and retraining or refresh strategies

  • Experience using modern cloud data platforms and transformation workflows such as Snowflake, dbt, and orchestration tools

  • Ability to identify data-quality limitations, recommend improvements, and collaborate with data engineers on pipelines and source reliability

  • Excellent written and verbal communication, particularly when explaining complex methods, uncertainty, and tradeoffs to non-specialists

  • Experience working cross-functionally with Product, Design, Software Engineering, and Data Engineering


Core Competencies


Demonstrates expertise in applied data science and machine learning, with a strong focus on model development, evaluation, and operationalization. Proficient in Python and SQL, capable of translating complex data insights into actionable strategies for fleet intelligence and predictive analytics.


Highest-signal resume keywords



  • Applied Data Science

  • Machine Learning

  • Python Proficiency

  • SQL Proficiency

  • Predictive Modeling


ATS Optimization Keywords


Hard Skills



  • Statistical Modeling

  • Feature Engineering

  • Time-Series Forecasting

  • Regression Analysis

  • Classification

  • Anomaly Detection

  • Model Validation

  • Performance Monitoring

  • Data Quality Assessment

  • Exploratory Data Analysis


Soft Skills



  • Excellent Communication

  • Cross-Functional Collaboration

  • Mentorship


Industry Keywords



  • Fleet Intelligence

  • Predictive Models

  • Data Engineering

  • Customer Workflows

  • Model Documentation


Tools & Technologies



  • Snowflake

  • Dbt

  • Orchestration Tools

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Stelleninformationen

  • Veröffentlichungsdatum:

    16 Sep 2026
  • Standort:

    WorkFromHome
  • Typ:

    Vollzeit
  • Arbeitsmodell:

    Vor Ort
  • Kategorie:

  • Erfahrung:

    2+ years
  • Arbeitsverhältnis:

    Angestellt

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