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[Hiring] Data Science Lead at Stralynn Consulting Services, Inc

Job Overview

Job Description

The Data Science Lead is a visionary architect of advanced analytical strategies, responsible for designing and validating complex AI/Machine Learning pipelines. This role ensures that all models are explainable, ethically sound, and aligned with client expectations and organizational objectives. The Data Science Lead provides technical leadership, mentors a team of data scientists and AI engineers, and oversees the entire lifecycle of predictive and prescriptive models to drive data-driven innovation and insights.

Responsibilities:

  • Design, develop, and validate sophisticated forecasting, risk scoring, and anomaly detection models using advanced statistical and machine learning techniques.
  • Provide expert supervision and guidance on causal inference methods and intricate machine learning feature engineering processes.
  • Strategically manage the development and deployment of predictive modeling solutions across diverse and large-scale datasets.
  • Lead and mentor a high-performing team of AI engineers and data scientists, fostering a collaborative and innovative environment.
  • Oversee comprehensive model governance frameworks, ensuring explainability, audit trail compliance, and adherence to ethical AI principles.
  • Architect and optimize AI/ML pipelines within cloud-based analytical environments (e.g., Databricks, Snowflake).
  • Collaborate with business intelligence developers to integrate model outputs into actionable dashboards and reports.
  • Drive continuous research and adoption of emerging AI/ML techniques and technologies relevant to the healthcare domain.
  • Communicate complex data science concepts and model insights effectively to both technical and non-technical stakeholders.
  • Ensure the reproducibility, scalability, and performance of all developed analytical solutions.

    Experience Required:

  • 8+ years of progressive experience leading healthcare or public sector AI/Machine Learning teams and projects.
  • Extensive hands-on experience in designing, building, and deploying advanced predictive and analytical models.
  • Proven track record of managing complex data science initiatives from concept to production.
  • Deep understanding of explainable AI (XAI) principles and methodologies.

    Certifications / Education:

  • Master’s degree (MS) in Data Science, Computer Science, Statistics, Applied Mathematics, or an equivalent quantitative field.
  • Machine Learning/Artificial Intelligence Certifications (preferred).

    Skills:

  • Explainable AI (XAI)
  • Causal Inference
  • Python/R (advanced proficiency)
  • Databricks, Snowflake
  • Machine Learning Algorithms
  • Deep Learning
  • Model Governance
  • Team Leadership
  • Data Architecture
  • Problem-Solving
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