HO - Data Science Specialist

HO - Data Science Specialist

Data Science is responsible for leading the data science function, driving data-driven decision-making, and delivering advanced analytics, machine learning, and AI solutions that support business objectives. This role combines strong technical expertise, leadership capabilities, and business acumen to manage a team of data scientists and collaborate with stakeholders across the organization.


Key Responsibilities

Advanced Analytics & Machine Learning

  • Design and implement predictive, prescriptive, and descriptive analytics solutions.
  • Develop machine learning, deep learning, and AI models to solve business challenges.
  • Guide model selection, feature engineering, model training, and performance evaluation.
  • Ensure models are scalable, reliable, and aligned with business needs.

Business Partnership

  • Collaborate with business leaders to identify opportunities for data-driven improvements.
  • Translate complex business problems into analytical frameworks and actionable solutions.
  • Present insights, recommendations, and model outcomes to executive stakeholders.
  • Drive adoption of analytics and AI across business functions.

Data Strategy & Governance

  • Contribute to enterprise data strategy and analytics roadmap development.
  • Ensure compliance with data governance, privacy, and security policies.
  • Promote data quality, integrity, and accessibility across the organization.
  • Work closely with Data Engineering and BI teams to establish trusted data platforms.

Project & Stakeholder Management

  • Manage multiple analytics and AI projects simultaneously.
  • Define project scope, timelines, resource requirements, and success criteria.
  • Monitor project progress and communicate updates to stakeholders.
  • Ensure projects are delivered on time and within budget.

Model Deployment & MLOps

  • Collaborate with engineering teams to deploy machine learning solutions into production.
  • Implement model monitoring, retraining, and lifecycle management processes.
  • Drive adoption of MLOps frameworks and automation practices.
  • Ensure model explainability, fairness, and performance tracking.

Innovation & Research

  • Evaluate emerging AI, machine learning, and analytics technologies.
  • Identify opportunities to leverage Generative AI and advanced analytics capabilities.
  • Promote experimentation through proof-of-concept initiatives and pilot projects.
  • Stay current on industry trends and technology advancements.

Required Qualifications

  • Bachelor‘s degree in Data Science, Computer Science, Statistics, Mathematics, Engineering, Economics, or a related field.
  • Master‘s degree in Data Science, Artificial Intelligence, Analytics, Statistics, or a related discipline is preferred.
  • At least 5 years of experience in Data Science, Machine Learning, Advanced Analytics, or AI.
  • Experience delivering machine learning solutions in production environments.
  • Proven track record of leading cross-functional analytics initiatives.
  • Experience working with enterprise-scale data platforms and cloud environments.

Technical Skills

Data Science & Machine Learning

  • Machine Learning Algorithms
  • Deep Learning
  • Natural Language Processing (NLP)
  • Generative AI / Large Language Models (LLMs)
  • Time Series Forecasting
  • Recommendation Systems
  • Statistical Modeling
  • A/B Testing and Experimentation

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