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[Remote] Machine Learning Engineer / Data Scientist

Work from home Full-time role Hiring

Note: The job is a remote job and is open to candidates in USA. Clinician Nexus is a company that enables health care organizations to build thriving clinician teams with innovative technology products. They are seeking a highly skilled Machine Learning Engineer to develop and deploy machine learning models and advanced data analytics solutions, collaborating with cross-functional teams to drive data-informed decision-making.

Responsibilities

  • Design, develop, and deploy ML solutions ranging from traditional ML applications (classification, clustering, recommendations) to LLM-based systems, including document parsing, data extraction, RAG pipelines, and LLM agents
  • Write clean, maintainable, production-quality Python code that integrates smoothly with existing engineering and deployment infrastructure
  • Work with large datasets to clean, preprocess, and analyze data, ensuring data quality and integrity
  • Implement and optimize algorithms using best practices in machine learning, deep learning, and statistical analysis
  • Collaborate with business stakeholders to understand requirements and deliver data-driven solutions that provide actionable insights
  • Develop and maintain scalable pipelines and infrastructure for data processing and model training, versioning, deployment, and monitoring
  • Evaluate the performance of machine learning models, including LLM-specific evaluation approaches, and tune models for optimal performance
  • Communicate findings, insights, and model performance to both technical and non-technical audiences
  • Continuously stay updated on the latest trends, technologies, and best practices

Skills

  • Bachelor's or Master's degree in Computer Science, Data Science, Statistics, Mathematics, or a related field. or related experience
  • Bachelor with 5+ years of relevant experience
  • Master or higher with 3+ years of relevant experience
  • Fluent in Python (3+ years of coding experience)
  • Strong software development practices in Python, including writing maintainable, testable, production-ready code
  • Solid understanding of LLM architectures and Generative AI
  • Hands-on experience building and evaluating RAG pipelines
  • Experience with LLM orchestration frameworks (LangChain, LlamaIndex, or similar)
  • Proficiency in machine learning libraries such as Scikit-learn and PyTorch; and fundamental libraries such as NumPy and Pandas
  • Familiarity with cloud platforms (e.g., AWS, GCP, Azure) and containerization tools (e.g., Docker)
  • Strong understanding of model evaluation metrics across traditional ML (e.g., accuracy, precision, recall, F1) and LLM-based systems (e.g., faithfulness, answer relevancy, hallucination detection), including approaches for evaluating non-deterministic outputs
  • Experience with model management tools such as MLFlow and the model development life cycle
  • Experience with version control tools such as Git
  • Proficiency in adapting SDLC best practices for code development and testing
  • Excellent problem-solving skills, analytical thinking, and the ability to work in a fast-paced environment
  • Strong communication skills and the ability to explain complex technical concepts to non-technical stakeholders
  • Collaborator: work effectively with others, including domain experts, engineers, and business stakeholders
  • Inquisitive: desire to ask questions and get a deeper understanding of issues
  • Innovative: ability to imagine new analytical solutions to any problem
  • Confident: able to challenge perceptions and biases of individuals at every level of the organization
  • Curious: stays abreast of current and upcoming technologies and tools
  • Business-oriented: solid understanding of business requirements and vernacular
  • Familiarity with optimizing, deploying and scaling automated training pipelines of transformer-based models
  • Familiarity with distributed training techniques and GPU-accelerated computing
  • Familiarity with classical NLP approaches
  • Experience implementing CI/CD pipelines for ML models for automating training, validation, monitoring, and scalable deployment
  • Experience with integrating and deploying AWS AI/ML services
  • Experience with Databricks
  • Experience in Health Care data

Benefits

  • Medical and dental coverage at no premium cost for employees
  • 401(k) and profit-sharing retirement plans
  • Flexible spending accounts
  • Paid time off (PTO)
  • Company-paid holidays
  • Gender-neutral parental leave
  • Bereavement and pet leave
  • Continuing education and professional accreditation sponsorship
  • Life and AD&D insurance
  • Short- and long-term disability
  • Employee assistance program
  • Mental health support program
  • Apply tot his job

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