Member of Technical Staff, Computational Biology at Radical Numerics | CA, USA | Rezi

Member of Technical Staff, Computational Biology at Radical Numerics

Member of Technical Staff, Computational Biology

Radical Numerics · CA, USA

1 months ago

Member of Technical Staff, Computational Biology

Radical Numerics · CA, USA

2 months ago
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About the Role

As a science-focused Member of Technical Staff, you will curate the multimodal biological datasets that power our models, analyze model behavior, and ensure our model outputs meet rigorous scientific standards. You'll co-develop benchmarks, filters, and validation pipelines with engineering peers so biological world models remain trustworthy and actionable.

Responsibilities

  • Source, normalize, and steward large-scale genomic, epigenomic, transcriptomic, proteomic, and imaging datasets with rigorous metadata and provenance.
  • Build evaluation suites and benchmarks that stress-test generative biological models across modalities and tasks.
  • Partner with AI engineers to analyze model outputs, run ablations, and surface insights that guide future architecture and training improvements.
  • Integrate new datasets and annotations from external collaborators while maintaining compliance, privacy, and ethical standards.
  • Communicate findings and best practices across Radical Numerics so teams can trust and act on model results.

Requirements

  • PhD in genetics, computational biology, or a related field, OR demonstrated experience in biotech with a strong track record of impact over 3+ years.
  • Proven experience curating, harmonizing, and analyzing large biological datasets (e.g., genomics, single-cell, spatial, or imaging).
  • Fluency with Python, data tooling, and reproducible workflows (git, notebooks, containers).
  • Ability to interrogate model outputs, debug unexpected behaviors, and translate findings into actionable recommendations.
  • Clear communicator who can bridge scientific context with engineering teams and partner organizations.
  • Curiosity and resilience when tackling open-ended scientific challenges.

Skills

  • Python
  • data tooling
  • reproducible workflows
  • git
  • notebooks
  • containers
  • generative model evaluation
  • red-teaming
  • safety analysis
  • statistical validation
  • quality control
  • benchmarking
  • benchmarking frameworks
  • open datasets
  • shared analytics tooling

Experience Level

  • 3+ years

Education Level

  • PhD in genetics, computational biology, or a related field

Benefits

  • Competitive compensation
  • comprehensive benefits
  • support for continual learning

About the Company

  • Radical Numerics is an AI research lab building general biological intelligence.
  • Our mission is to master the code of life, and our purpose is to reduce human suffering.
  • Our team created Evo, and started the field of generative genomics.
  • Our work was featured on the cover of Science, and presented by our CEO on the main stage of TED2025.
  • Evo was used to create the first AI gene therapy tool CRISPR-Cas9, and the first AI whole genome from scratch.
  • Evo 2, featured in Nature, is the largest fully open source AI project across any domain.
  • Radical Numerics is bringing the rigor of distributed systems, model architecture, and numerics research to the challenges of biology.
  • We’ve redesigned the foundation model training stack to turn the world’s raw scientific data (e.g. biological sequences, experiments, and physical processes), into intelligible, generative models that can expand and accelerate what humanity can understand, design, and cure.
  • The same generative breakthroughs that enable life-saving cures also lowers the barrier to creating engineered threats and AI-generated bioweapons.
  • We believe these forces are inseparable.
  • Radical Numerics was founded to develop both the power to design and the responsibility to defend.

Equal Opportunity

  • Radical Numerics is committed to equal employment opportunity and does not discriminate in any employment opportunities or practices based on an individual's race, color, creed, gender (including gender identity and gender expression), religion (all aspects of religious beliefs, observance or practice, including religious dress or grooming practices), marital status, registered domestic partner status, age, national origin or ancestry (including language use restrictions and possession of a driver’s license issued under California Vehicle Code section 12801.9), natural hair, physical or mental disability, political affiliation, medical condition (including cancer or a record or history of cancer, and genetic characteristics), sex (including pregnancy, childbirth, breastfeeding or related medical condition), genetic information, sexual orientation, military and veteran status or any other consideration made unlawful by federal, state, or local laws.
  • It also prohibits unlawful discrimination based on the perception that anyone has any of those characteristics, or is associated with a person who has or is perceived as having any of those characteristics.