Senior Machine Learning Engineer

Pennant Solutions Group

  • Richmond, Virginia
  • 30+ days ago

    Highlights

    Design, develop, and deploy sophisticated machine learning models with emphasis on NLP applications including text classification, named entity recognition, sentiment analysis, language generation, and semantic search. You will work at the intersection of research and engineering, translating complex ML concepts into production-ready solutions while mentoring junior team members and establishing best practices across the organization.

    Numbers & Facts

    LocationRichmond, Virginia

    Description

     

    Senior Machine Learning Engineer

    Position Type: Full-Time/Onsite in Richmond, VA - NO REMOTE
    Level: Senior
    Department: Engineering
     


    About the Role



    We are seeking an exceptional Senior Machine Learning Engineer to join our growing AI team. This role offers a unique opportunity to architect, develop, and deploy cutting-edge machine learning solutions that directly impact millions of users. As a senior member of our team, you will lead the design and implementation of scalable ML systems, with a particular focus on Natural Language Processing applications and robust MLOps practices.



    The ideal candidate will bring deep expertise in production machine learning systems, demonstrating proficiency in MLOps, Natural Language Processing, and AWS SageMaker. You will work at the intersection of research and engineering, translating complex ML concepts into production-ready solutions while mentoring junior team members and establishing best practices across the organization.



    Key Responsibilities



    Machine Learning Development & Deployment



    • Design, develop, and deploy sophisticated machine learning models with emphasis on NLP applications including text classification, named entity recognition, sentiment analysis, language generation, and semantic search
    • Build and optimize end-to-end ML pipelines using AWS SageMaker, from data preprocessing and feature engineering through model training, evaluation, and deployment
    • Implement state-of-the-art transformer-based models and fine-tune large language models for domain-specific applications
    • Conduct rigorous experimentation, A/B testing, and model evaluation to ensure optimal performance and business impact
    • Develop custom algorithms and innovative solutions for complex business problems that cannot be solved with off-the-shelf approaches


    MLOps & Infrastructure



    • Architect and maintain robust MLOps infrastructure ensuring seamless model lifecycle management from development to production
    • Implement comprehensive CI/CD pipelines for ML models using tools such as SageMaker Pipelines, MLflow, or similar platforms

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