Data Scientist II

Expert Technology Services

  • Phoenix, AZ
  • 5 days ago

    Highlights

    Develop, test, and optimize machine learning models to address business challenges and provide actionable insights. - Perform statistical analyses, forecasting, hypothesis testing, and predictive modeling on large, complex datasets.

    Numbers & Facts

    LocationPhoenix, AZ

    Description

    Job Summary for Data Scientist II (List Format):

    - Develop, test, and optimize machine learning models to address business challenges and provide actionable insights.
    - Perform statistical analyses, forecasting, hypothesis testing, and predictive modeling on large, complex datasets.
    - Collaborate with business stakeholders to identify opportunities for data science to improve decision-making and operational efficiency.
    - Conduct exploratory data analysis to uncover patterns, trends, and business opportunities.
    - Design and evaluate experiments to support strategic initiatives.
    - Build and maintain analytical datasets, reports, dashboards, and data visualizations.
    - Present findings and recommendations to both technical and non-technical audiences.
    - Support the deployment, monitoring, and performance measurement of models in production environments.
    - Work closely with data engineers, analysts, and technology teams throughout the data science lifecycle.
    - Stay updated on emerging machine learning and AI techniques, recommending relevant applications.

    Required Qualifications:
    - Bachelor's degree in Data Science, Statistics, Computer Science, Mathematics, Engineering, or related quantitative field.
    - 3-4 years of experience in data science, machine learning, or predictive analytics roles.
    - Hands-on experience building and validating machine learning models using Python.
    - Strong knowledge of supervised and unsupervised learning techniques.
    - Proficient in statistical analysis, predictive modeling, and data mining methodologies.
    - Advanced SQL skills; experience working with large datasets.
    - Experience with visualization and reporting tools (e.g., Power BI).
    - Excellent communication skills, with the ability to translate technical findings into business recommendations.

    Preferred Qualifications:
    - Master's degree in a quantitative discipline.
    - Experience with AWS, Azure, or other cloud-based environments.
    - Familiarity with MLOps, including model deployment, monitoring, CI/CD, and lifecycle management.
    - Experience with machine learning frameworks (e.g., Scikit-Learn, TensorFlow, PyTorch, XGBoost).
    - Knowledge of predictive analytics, forecasting, optimization, customer analytics, or operational analytics use cases.

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