Machine Learning Scientist - Clinical Prediction

Iambic Therapeutics, Inc

$120K — $150K *
US-AnywhereRemote in Boston, MA
Healthcare
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • MS in a relevant field or PhD with industry experience
  • 3+ years in industry or research related to clinical science
  • Proficient in Python for deep learning models
  • Experience with clinical datasets
  • Strong data science skills including EDA and modeling
  • Independence in managing workstreams from data to evaluation
  • Strong engineering practices for reproducibility

Responsibilities

  • Fine-tune large multimodal transformer models for clinical applications
  • Identify and utilize datasets for PK, PD, and clinical outcomes
  • Develop rigorous experimental frameworks to prevent data leakage
  • Design benchmarking and evaluation frameworks for model quality
  • Build models with proper calibration and evaluation metrics
  • Collaborate with ML and engineering teams for model deployment
  • Partner with clinical scientists to align model development with drug discovery
  • Communicate findings to diverse stakeholders and at conferences
  • Generate high-quality, maintainable ML code to support team velocity

Benefits

  • Industry-leading competitive pay
  • Company-paid healthcare
  • Flexible spending accounts
  • Voluntary life insurance
  • 401K matching
  • Uncapped vacation policy
  • New state-of-the-art facility with amenities in San Diego
Full Job Description
JOB SUMMARY

We are seeking a Machine Learning Scientist to join the Enchant team at Iambic Therapeutics. In this role, you will design and implement clinical fine-tuning of Enchant, our multimodal transformer model trained on a wide variety of biomedical data, pushing the boundaries of what large-scale foundation models can achieve in drug discovery.

This role spans data sourcing through to production deployment. You will identify, curate, and evaluate datasets that support prediction of relevant clinical endpoints (patient- and trial-level outcome modeling, safety/toxicity prediction, and PK/PD response modeling) and fine-tune Enchant to deliver critical clinical insights. This includes developing rigorous, leakage-resistant experimental frameworks, optimizing training, orchestrating runs at scale, and working with colleagues across ML and clinical functions to put these models into the hands of scientists making real therapeutic decisions.

KEY RESPONSIBILITIES
  • Fine-tune large-scale multimodal transformer models for clinical and biomedical applications
  • Identify, characterize, and utilize datasets that can deliver insights into pharmacokinetics (PK), pharmacodynamics (PD), toxicity, clinical adverse events, and clinical trial outcomes
  • Develop and apply rigorous experimental approaches that account for multiple sources of potential leakage (split, metadata, trial-family, temporal, ontological, arm-comparator, etc.)
  • Design and maintain benchmarking and evaluation frameworks that track model quality across models and tasks
  • Build models with appropriate calibration, uncertainty quantification, and clinically meaningful evaluation metrics.
  • Collaborate with ML and software engineering colleagues to deploy and operationalize models
  • Partner with clinical scientists and pharmacologists to ensure model development is grounded in drug discovery and development needs
  • Communicate results to internal teams, external partners, and at conferences
  • Generate high-quality research and engineering code: refactor, test, document, and package ML components to support team velocity


REQUIRED QUALIFICATIONS
  • MS in chemistry, bio/chemical engineering, or a computational STEM field with 3+ years of relevant industry or research experience, or PhD or equivalent industry experience demonstrating comparable depth
  • Strong Python experience, including implementing and fine-tuning deep learning models
  • Demonstrated experience in clinical science or working with clinical datasets
  • Excellent Data Science skills (problem framing, data sourcing, extraction, cleaning, visualization, EDA, modeling, tuning, storytelling, etc.)
  • Enough independence to own a workstream from data ingestion through evaluation
  • Strong engineering habits: reproducible experimentation, appropriate control strategy, clean code, testing
  • Comfort working with modern ML infrastructure (e.g., Docker, CUDA, Kubernetes, experiment tracking such as Weights & Biases)


PREFERRED QUALIFICATIONS
  • Experience building and deploying clinically relevant prediction models
  • Familiarity with ClinicalTrials.gov/AACT data
  • Experience with MedDRA, pharmacovigilance, or adverse event data
  • Direct exposure to multi-task learning
  • Hands-on experience with agentic data extraction
  • HPC or large-scale computing experience


PAY AND BENEFITS

We offer industry leading competitive pay, company paid healthcare, flexible spending accounts, voluntary life insurance, 401K matching, and uncapped vacation to our team. We are in a brand-new state-of-the art facility in beautiful San Diego with an onsite gym, dining, and easy access to great places to live and play.

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