Data Scientist

PeopleNTech LLC

  • Atlanta, GA
  • 30+ days ago
  • Remote

    Highlights

    Data Engineering Skilled in building scalable cloud data pipelines for high-volume manufacturing and IoT data using Spark, Kafka, Airflow, and Delta Lake. Data Science Proven track record building and deploying ML models for predictive maintenance, anomaly detection, demand forecasting, and root cause analysis.

    Numbers & Facts

    LocationAtlanta, GA (
    Remote
    )

    Description

    Role: Data Scientist
    Location: Remote, USA
    Duration: Fulltime Employee
    Numbers of Interview: 3 to 4
    Mode of Interviews – Virtual
    Tentative start date – ASAP
    Salary :
    USD $130,815 ($118,923 Base salary + 5% Organizational bonus + 5% Performance Bonus) + Benefits.
    As part of our commitment to our employees, Nagarro provides a robust benefits package for full-time employees, which includes:
    • Medical Coverage, Dental and Vision (100% Nagarro contribution for the employee, 80% contribution for immediate dependents).
    • 15 days of Paid Time Off (PTO).
    • 10 paid holidays (including 8 fixed holidays and 2 floating holidays).
    • 401K enrollment with a 100% employee contribution (please note that we do not provide a matching contribution).
    Job Overview:
    • Manufacturing 8–10 years in manufacturing (optional) with hands-on experience in shop floor operations, production planning, and systems including MES, SCADA, and ERP.
    • Proficient in industrial protocols (OPC-UA, MQTT, Modbus) with ability to bridge OT/IT systems for real-time data extraction.
    • Applied experience with OEE, Six Sigma, SPC, and lean methodologies to drive measurable gains in yield, uptime, and efficiency.
    • Data Engineering Skilled in building scalable cloud data pipelines for high-volume manufacturing and IoT data using Spark, Kafka, Airflow, and Delta Lake. Proficient in scikit-learn, TensorFlow, or PyTorch with experience moving models from prototype to production in industrial environments.
    • Strong communicator — able to translate complex model outputs into clear, actionable recommendations for operations and executive stakeholders.
    • Solid grounding in statistical methods — time series, regression, clustering, and hypothesis testing applied to manufacturing quality problems.
    • Experience designing A/B experiments and simulations to validate process changes and quantify business impact before full deployment.

    Qualifications
    Must Have:
    • Minimum 6 years of experience as Data Scientist.
    • Strong SQL and Python proficiency with hands-on experience in medallion/Lakehouse architectures on Databricks, Snowflake, AWS, or Azure.
    • Data Science Proven track record building and deploying ML models for predictive maintenance, anomaly detection, demand forecasting, and root cause analysis.

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