Enigma Search
AI Antibody Design Research Scientist
Enigma Search, Redwood City, California, United States, 94061
Position Overview
Our client is a Stealth Biotechnology company whose core mission is to discover and develop differentiated biologics to treat immunological and other diseases. Our client is seeking a highly motivated AI Antibody Design Research Scientist to join the team. The successful candidate will leverage cutting-edge artificial intelligence and machine learning approaches to advance antibody discovery and design. This role offers the opportunity to work at the intersection of AI, structural biology, and therapeutic development. Key Responsibilities
Research & Development Develop and implement novel AI/ML algorithms for antibody design, optimization, and engineering
Apply and improve protein structure prediction models for antibody-antigen interactions
Design computational workflows for high-throughput antibody screening and optimization
Integrate multi-modal data including sequence, structure, and experimental data
Iteratively fine tune/retrain models based on experimental validation and feedback from wet lab teams
Collaboration & Innovation Stay current with rapidly evolving AI antibody design literature and methodologies
Evaluate and implement state-of-the-art models and tools in the field
Collaborate closely with experimental teams to validate computational predictions
Effectively communicate complex computational concepts and results to experimental scientists
Integrate experimental data as feedback to iteratively improve and fine tune/retrain AI models
Present research findings at scientific conferences and publish in peer-reviewed journals
Required Qualifications and Experience
Ph.D. in Computational Biology, Bioinformatics, Computer Science, Physics, Chemistry, or related field
(Preferred) 1 years of postdoctoral or industry experience in AI antibody design
Demonstrated experience in either: Protein structure modeling and prediction algorithms
Antibody design, engineering, or computational immunology
Experience with diffusion models, pairformer architecture and antibody language models for structure prediction and antibody design
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Our client is a Stealth Biotechnology company whose core mission is to discover and develop differentiated biologics to treat immunological and other diseases. Our client is seeking a highly motivated AI Antibody Design Research Scientist to join the team. The successful candidate will leverage cutting-edge artificial intelligence and machine learning approaches to advance antibody discovery and design. This role offers the opportunity to work at the intersection of AI, structural biology, and therapeutic development. Key Responsibilities
Research & Development Develop and implement novel AI/ML algorithms for antibody design, optimization, and engineering
Apply and improve protein structure prediction models for antibody-antigen interactions
Design computational workflows for high-throughput antibody screening and optimization
Integrate multi-modal data including sequence, structure, and experimental data
Iteratively fine tune/retrain models based on experimental validation and feedback from wet lab teams
Collaboration & Innovation Stay current with rapidly evolving AI antibody design literature and methodologies
Evaluate and implement state-of-the-art models and tools in the field
Collaborate closely with experimental teams to validate computational predictions
Effectively communicate complex computational concepts and results to experimental scientists
Integrate experimental data as feedback to iteratively improve and fine tune/retrain AI models
Present research findings at scientific conferences and publish in peer-reviewed journals
Required Qualifications and Experience
Ph.D. in Computational Biology, Bioinformatics, Computer Science, Physics, Chemistry, or related field
(Preferred) 1 years of postdoctoral or industry experience in AI antibody design
Demonstrated experience in either: Protein structure modeling and prediction algorithms
Antibody design, engineering, or computational immunology
Experience with diffusion models, pairformer architecture and antibody language models for structure prediction and antibody design
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