Machine Learning & AI Analyst (Clinical Research) - Data Driven & Digital Medicine

Mount Sinai

United States

Hybrid

USD 120,000 - 180,000

Full time

6 days ago
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Benefits offered by this job

Hybrid work arrangement

Job summary

Mount Sinai's Division of Data-Driven and Digital Medicine (D3M) seeks an early- to mid-career Machine Learning / AI Analyst to design, build, and evaluate NLP and multimodal AI solutions. You will work with clinicians and operations to turn narratives, EHR data, imaging, and omics into trustworthy models and user-friendly tools.

Based in New York, NY, this role emphasizes internal decision-support tools, model governance, and responsible AI in healthcare, with hybrid flexibility per policy.

Qualifications

  • 2+ years of ML/NLP experience with Python and/or R; strong SQL for data wrangling.
  • Hands-on with modern ML/NLP tools and reproducible workflows.
  • Ability to translate clinical/operational problems into analytical solutions.
  • Strong communication for mixed audiences; curiosity and responsible AI mindset.
  • Experience in healthcare settings and HIPAA awareness is a plus.

Responsibilities

  • Lead NLP and multimodal ML efforts across text, tabular, imaging, and omics data.
  • Prototype internal decision-support and productivity tools for clinical use.
  • Build data pipelines with data integrity, lineage, and reproducibility.
  • Train, fine-tune, and evaluate ML/LLM models including retrieval-augmented generation.
  • Collaborate with clinicians and operations to define success criteria and pilots.
  • Operationalize models with MLOps practices and documentation; ensure governance.

Skills

NLP
Multimodal ML
Python
SQL
Experiment tracking
MLOps
Docker/Kubernetes
Cloud platforms

Education

Bachelor's degree in CS/ Biomedical Informatics/ Data Science
Master’s degree preferred

Tools

scikit-learn
PyTorch/TensorFlow
spaCy/Hugging Face
MLflow
Weights & Biases
Docker
Kubernetes

Job description

The Division of Data-Driven and Digital Medicine (D3M) is recruiting an early- to mid-career Machine Learning / AI Analyst to design, build, and evaluate solutions with a primary emphasis on Natural Language Processing (NLP) and multimodal AI, including multi-omics. Beyond clinical research and translation, the role includes developing internal decision-making and productivity tools for the Department of Medicine. You will collaborate with clinicians, scientists, and operations partners to turn clinical narratives, structured data, imaging, waveforms, and multi-omics into trustworthy models and user-friendly tools.

About the Division

D3M's mission is to bring data-driven and digital innovation to research, education, and clinical care at Mount Sinai-accelerating the translation of AI and digital tools into practice while training the next generation of leaders. The Division collaborates broadly across the Health System to catalyze groundbreaking research and deploy real-world solutions.

  • Lead NLP and multimodal ML efforts across text (clinical notes), tabular EHR, imaging, biosignals, and multi-omics to solve high-impact clinical and operational problems.
  • Prototype and iterate internal decision-support and productivity tools (e.g., workflow triage, quality improvement insights, operational dashboards).
  • Build robust data pipelines and features; ensure data integrity, lineage, and reproducibility.
  • Train, fine-tune, and evaluate models (traditional ML, deep learning, and LLM-based approaches, including retrieval-augmented generation).
  • Partner with clinical and operations leaders to frame problems, define success criteria, and run pilots that demonstrate measurable value.
  • Operationalize models with MLOps best practices (versioning, CI/CD, monitoring, governance) and documentation for safe, responsible use.
  • Follow privacy, security, and compliance requirements (e.g., HIPAA) and contribute to model risk management and bias/impact assessments.
  • Communicate findings to technical and non-technical audiences through clear write-ups, visualizations, and presentations.
Minimum Qualifications
  • Bachelor's degree in Computer Science, Biomedical/Clinical Informatics, Data Science, Statistics, Engineering, or related field (Master's preferred).
  • 2+ years (industry, health system, or academic) working with ML/NLP using Python and/or R; strong SQL for data wrangling.
  • Hands-on experience with modern ML/NLP (scikit-learn, PyTorch/TensorFlow; spaCy/Hugging Face), experiment tracking, and reproducible workflows.
  • Ability to translate clinical/operational problems into analytical solutions and to communicate results to mixed audiences.
  • Curiosity, product mindset, and commitment to responsible AI in healthcare.
Preferred Qualifications (emphasis areas)
  • Deep experience in NLP and LLMs (prompting, fine-tuning, evaluation) and RAG over clinical knowledge bases.
  • Multimodal learning across text, tabular, imaging, biosignals, and multi-omics.
  • Experience integrating or analyzing multi-omics modalities (e.g., genomics, transcriptomics, proteomics, metabolomics) and linking them to clinical outcomes.
  • Experience working with EHR data and standards (e.g., OMOP).
  • MLOps tooling (MLflow, Weights & Biases), containerization/orchestration (Docker, Kubernetes), and cloud platforms.
  • Practical understanding of model governance, fairness, and human-in-the-loop evaluation in healthcare.
  • Track record delivering prototypes or products used by clinicians/researchers; publications or open-source contributions a plus.

Work Arrangement : Position is based in New York, NY (Icahn School of Medicine at Mount Sinai). Hybrid flexibility may be available per departmental policy.

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