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Director of Machine Learning

LinkedIn Allen Institute Seattle, WA
Not Applicable Posted April 1, 2026 Job link
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Requirements
  • 5+ years of post-Ph.D. (or equivalent) experience building, training, and deploying ML models in a research or product environment
  • Deep expertise in ML applied to biological sequences or structured biological data (e.g., regulatory genomics, transcriptional modeling, protein/DNA design)
  • Strong proficiency in Python and at least one modern ML framework (e.g., PyTorch, JAX, or TensorFlow)
  • Proven track record of technical leadership: mentoring scientists/engineers, setting standards, and delivering complex ML systems
  • Excellent communication skills and ability to collaborate effectively with both computational and experimental scientists
  • Prior experience leading ML efforts in small, fast-moving, or start-up-style research environments
  • Strong publication or open-source record in ML for biology, sequence modeling, or synthetic biology
Preferred Skills
  • Demonstrated experience integrating diverse datasets (e.g., ATAC-seq, RNA-seq, single-cell data) into predictive or generative models
  • Research experience in regulatory genomics, enhancers/promoters, transcription factor binding, or MPRA-based model training
  • Experience with AI-driven protein design tools such as RFdiffusion, ProteinMPNN, or comparable workflows
  • Hands-on work with DBTL loops in synthetic biology, including active learning, experiment selection, or closed-loop optimization
  • Experience with generative models for biological sequences (e.g., autoregressive, VAE, diffusion, RL-based sequence design)
  • Prior experience leading ML efforts in small, fast-moving, or start-up-style research environments
  • Strong publication or open-source record in ML for biology, sequence modeling, or synthetic biology
Education
  • (Not required) – Ph.D. in Computer Science, Computational Biology, Statistics, Physics, or related field; or equivalent combination of degree and experience
  • (Not required) – 5+ years of post-Ph.D. (or equivalent) experience building, training, and deploying ML models in a research or product environment