Member of Technical Staff - Multi-Modal, Vision
Liquid AI - San Francisco, United States
Posted Oct 23, 2025
Benefits
- Parental leave
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- Non-birth-parent leave
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- Family-building benefits
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- Fertility benefits: Not verified
- Adoption assistance: Not verified
- Surrogacy assistance: Not verified
- Mental health support
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- Relocation assistance
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- Childcare support
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- Learning budget
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- Salary
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- 401(k) match
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Schedule
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- Weekend work
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Application
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Where they hire
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About this role
Member of Technical Staff - Multi-Modal, Vision San Francisco, United States About Liquid AI Spun out of MIT CSAIL, we build general-purpose AI systems that run efficiently across deployment targets, from data center accelerators to on-device hardware, ensuring low latency, minimal memory usage, privacy, and reliability. We partner with enterprises across consumer electronics, automotive, life sciences, and financial services. We are scaling rapidly and need exceptional people to help us get there. The Opportunity The VLM team builds vision-language models that run on-device, under tight latency and memory constraints, without sacrificing quality. We have released four best-in-class models and we're just getting started. This team owns the full VLM pipeline end-to-end: from researching new architectures and training algorithms through data curation, evaluation, and deployment. You'll join a focused, hands-on group that works directly on models and collaborates closely with our pretraining, post-training, and infrastructure teams. Success here is measured by the capability of the models we ship. Minimal qualifications: - Hands-on experience in training or evaluating VLMs with demonstrated experimental rigor. - Ability to turn research ideas into scalable implementations, refine and iterate through hypotheses. - Proficiency in Python and at least one deep learning framework. - M.S. or Ph.D. in Computer Science, Mathematics, or a related field; or equivalent industry experience. This role is for you if you have experience in some of the following: - Building or optimizing multimodal training or data pipelines. - Experience with distributed training (DeepSpeed, FSDP, Megatron-LM, etc.). - Multimodal post-training experience (SFT, preference
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