Data Scientist, Bioengineering

Merge Labs

$130K — $155K *
Pharmaceuticals & Biotech
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Deep grounding in synthetic biology and molecular engineering
  • Experience with biomolecular ultrasound
  • Familiarity with NGS, Omics, ML, and molecular engineering concepts
  • Proficient in Python and frameworks like PyTorch, BoTorch, Pyro
  • Experience in bridging machine learning and experimental science with high-cost data

Responsibilities

  • Collaborate with wet-lab scientists to define optimization objectives and metrics
  • Encode domain-specific priors for computational modeling
  • Stay current with synthetic biology and ML-guided engineering research
  • Contribute to the long-term research roadmap as a thought leader
  • Develop data-analysis pipelines that transform raw data into actionable insights

Benefits

  • Collaboration with leading experts in ML, Ultrasound, and synthetic biology
  • Opportunity to impact experimental and computational research across various domains
  • Access to cutting-edge research resources and methodologies
  • Engagement in a high-impact, innovative team environment
  • Flexible approach to hiring that values complementary strengths in candidates
Full Job Description


About the role

We need a Data-Scientist who can sit at the interface of Ultrasound, synthetic-biology, and research platforms (imaging, sequencing) and drive the development of rigorous data-analysis pipelines that surface actionable insights for experimental and computational researchers alike. This person will collaborate with domain experts in ML, Ultrasound, synthetic biology, and data-engineering to develop data-analysis pipelines that transform "raw" data into actionable artifacts. This person will subsequently collaborate with ML researchers to develop and run ML pipelines that enable de-novo design and closed-loop active learning cycles across a number of problem domains in bioengineering (delivery, immunology, synthetic biology, protein-engineering).

In this role, you will:
  • Collaborate with wet-lab scientists to define tractable optimization objectives and metrics, and encode domain specific priors and constraints for downstream computational modeling.
  • Stay current with research in Synthetic Biology and ML-guided molecular and cellular engineering, as well as data-analysis methods and techniques for biological data (OMICS, Agentic-workflows).
  • Contribute to the long-term research roadmap and serve as a thought-leader for scientists.


You might thrive in this role if you have:
  • Deep grounding in synthetic biology, molecular engineering, and computational methods for data-analysis.
  • Experience in biomolecular ultrasound.
  • Familiarity with fundamental concepts in NGS, Omics, ML, and molecular engineering.
  • Proficiency in Python / PyTorch / BoTorch / Pyro and comfort writing clean, reproducible production grade code.
  • Experience bridging machine learning and experimental science, especially working with sparse, noisy, and or high-cost data.

If you're excited about this role but don't meet every qualification, please apply. As we build, we're hiring for complementary strengths to form a high-impact team.

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