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Senior Specialist, Data Science & Analytics II

Job Purpose

Design, develop, and deploy machine learning and Generative AI solutions to solve defined business problems, ensuring technical robustness, model performance, and responsible AI implementation.

Key Accountabilities

  • Develop, test, and validate machine learning, deep learning, and Generative AI models (including LLM-based applications).

  • Implement prompt engineering strategies and retrieval-augmented generation (RAG) pipelines.

  • Perform feature engineering, model tuning, and performance optimization.

  • Prepare, cleanse, and transform structured and unstructured datasets.

  • Support deployment of ML and GenAI models using MLOps and LLMOps practices.

  • Conduct structured evaluation of LLM outputs including hallucination detection and quality scoring.

  • Integrate AI solutions via APIs into enterprise systems.

  • Document model design, assumptions, risks, and validation results.

  • Ensure compliance with data governance, cybersecurity, and ethical AI guidelines.

  • Support monitoring, retraining, and lifecycle management of deployed models.

Minimum Qualification, Experience and Competencies

  • Minimum Qualification
  • Bachelor’s degree in Data Science, Artificial Intelligence, Computer Science, or a related quantitative field

Minimum Experience

  • 4–6 years in data science, machine learning, or applied AI roles.

Skills:

  • Python, SQL, ML frameworks (TensorFlow, PyTorch, Scikit-learn)
  • Prompt engineering
  • RAG pipelines & vector databases
  • Model fine-tuning and evaluation
  • Data preprocessing & feature engineering
  • Basic cloud deployment concepts
  • MLOps / LLMOps fundamentals
  • Analytical problem-solving
  • Results Orientation
  • Collaboration
  • Continuous Improvement
  • Accountability

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