Senior Director, Data Science

• Posted 1 day ago • Updated 1 day ago
Full Time
On-site
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Optimization
  • Regulatory Compliance
  • Investments
  • Talent Management
  • Return On Investment
  • Roadmaps
  • Use Cases
  • Management
  • Budget
  • Data Mining
  • Unstructured Data
  • Data Modeling
  • Systems Design
  • Data Visualization
  • Presentations
  • Design Of Experiments
  • Deep Learning
  • Predictive Modelling
  • Forecasting
  • Business Intelligence
  • Reporting
  • Dashboard
  • Programming Languages
  • Writing
  • Analytical Skill
  • Scripting
  • Mathematical Modeling
  • Generative Artificial Intelligence (AI)
  • Communication
  • Relationship Building
  • Strategic Planning
  • Coaching
  • Succession Planning
  • Change Management
  • Data Science
  • Advanced Analytics
  • Team Leadership
  • Statistics
  • Computer Science
  • Leadership
  • Cloud Computing
  • Amazon Web Services
  • Microsoft Azure
  • Google Cloud
  • Google Cloud Platform
  • Machine Learning (ML)
  • Machine Learning Operations (ML Ops)
  • Artificial Intelligence
  • Risk Management

Summary

Senior Director, Data Science

Location: Bay Area preferred, optional: Nashville, TN or Sterling, VA

POSITION OVERVIEW

The Senior Director of Data Science leads enterprise data science strategy, delivery, and governance to drive measurable business impact. This role oversees teams building predictive, optimization, and generative models, partnering with cross-functional leaders to prioritize high-value use cases. The leader establishes enterprise best practices for model development, MLOps, and responsible AI, and ensures outcomes align with corporate goals, risk standards, and compliance. The role balances long-term platform investments with near-term initiatives, fosters talent development, and communicates complex insights clearly to executives. Success is measured by adoption, ROI, and operational reliability of data science solutions.

ESSENTIAL JOB SKILLS/DUTIES
  • Own enterprise data science strategy and multi-year roadmap.
  • Prioritize high-impact use cases with executive stakeholders.
  • Oversee model lifecycle, from discovery to productionization.
  • Establish enterprise level standards for MLOps and responsible AI governance.
  • Develop talent, structure teams, and manage budgets.
  • Communicate results and risks to senior leadership.

REQUIRED TECHNICAL SKILLS
  • Data Mining: Applying techniques to extract patterns, relationships, and insights from structured and unstructured data.
  • Data Modeling: Designing structured representations of data, including entities, relationships, and attributes, to support analysis and system design.
  • Data Visualization: Presenting data through visual formats such as charts, graphs, maps, and dashboards to communicate insights and trends.
  • Experimental Design: Designing and structuring experiments, including variable selection, control groups, and bias mitigation methods, to produce valid and reliable results.
  • Machine Learning: Developing and applying machine learning models, including deep learning approaches, to generate predictions and classifications.
  • Predictive Modeling: Building statistical and mathematical models using historical data to forecast outcomes and identify trends.
  • Business Intelligence Technologies: Using tools and platforms to collect, process, analyze, and display data through reporting and dashboard solutions.
  • Programming Languages: Writing and maintaining code to develop analytical models, scripts, and data-driven applications.
  • Mathematical Modeling: Creating mathematical representations of real-world problems to support analysis and predictive insights.
  • Generative Artificial Intelligence: Developing and applying generative models to create original outputs based on learned data patterns.

REQUIRED SOFT/LEADERSHIP SKILLS
  • Executive communication and storytelling with data.
  • Stakeholder influence and strong cross-functional relationship building.
  • Strategic planning and portfolio prioritization discipline.
  • People leadership, coaching, and succession planning.
  • Change management and adoption enablement.

REQUIRED EDUCATION & EXPERIENCE
  • Advanced degree in quantitative field or equivalent experience.
  • 12+ years in data science or advanced analytics.
  • 7+ years leading teams and complex programs.
  • Proven delivery of measurable business outcomes.

PREFERRED EDUCATION & EXPERIENCE
  • Masters in statistics, computer science, or related discipline.
  • Leadership experience in large, matrixed organizations.
  • Track record scaling platforms and reusable assets.

PREFERRED LICENSES/CERTIFICATIONS
  • Cloud certification in AWS, Azure, or Google Cloud.
  • Certification in ML or MLOps frameworks.
  • Responsible AI or model risk management accreditation.
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90922487
  • Position Id: 24395895
  • Posted 1 day ago
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