
We build efficient general-purpose AI at every scale.
Founded: MIT CSAIL spinout (Dec 2023)
Founders: Ramin Hasani; Mathias Lechner; Alexander Amini; Daniela Rus
Product focus: Efficient, general-purpose 'liquid' neural-network foundation models for edge-to-cloud
Notable funding: $37.5M seed announced Dec 2023; later raises reported including a $250M raise
Employee count: 111
Efficient AI for edge and embedded systems; low-latency, hardware-aware foundation models.
2023
Artificial intelligence / Machine learning
$37.5M
Two-stage seed reported; named participants included OSS Capital, The Pags Group, Automattic, Samsung Next, Bold Capital Partners, ISAI Cap Venture and angel investors.
$250M
Company blog post announced a $250M raise to scale their models; details on timing and lead investors provided in company announcement.
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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 This is a rare chance to own applied post-training work end-to-end for audio workloads, adapting Liquid Foundation Models for customers who need speech and audio capabilities that run on-device under real-time constraints.
You will act as the technical bridge between customer requirements and model delivery for audio tasks. You will lead engagements from scoping through evaluation, with full ownership over how audio models are adapted and shipped. Between engagements, you will build reusable applied workflows and tooling that accelerate future delivery.
If you care about audio data quality, speech model evaluation, and making audio models actually work in production for real customers, this is the role.
What We’re Looking For We need someone who:
The Work
Must-have Desired Experience
Nice-to-have
What Success Looks Like (Year One)
What We Offer
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