Primary record

Machine Learning Research Engineer (LLMs & AI Systems)

Tenstorrent Indexed employerBoston, Massachusetts, United States; Toronto, Ontario, Canada · Boston, Massachusetts, United States · Toronto, Ontario, Canada
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Workplace

hybrid

Employment

Other

Published

Aug 11, 2026

Closes

No date supplied

The role

Tenstorrent is leading the industry on cutting-edge AI technology, revolutionizing performance expectations, ease of use, and cost efficiency. With AI redefining the computing paradigm, solutions must evolve to unify innovations in software models, compilers, platforms, networking, and semiconductors. Our diverse team of technologists have developed a high performance RISC-V CPU from scratch, and share a passion for AI and a deep desire to build the best AI platform possible. We value collaboration, curiosity, and a commitment to solving hard problems. We are growing our team and looking for contributors of all seniorities.

Tenstorrent is building next-generation AI systems that push the boundaries of model training, inference, and large-scale distributed compute. The ML Models team sits at the intersection of cutting-edge AI research and high-performance hardware, bringing state-of-the-art machine learning models to life on Tenstorrent’s custom AI accelerators. From training large language models to optimizing inference performance at scale, this team works across the full stack to turn breakthrough research into production-ready AI systems. If you are passionate about advancing the frontier of AI research, inference and training optimizations, this is an opportunity to shape how future AI models are developed and deployed.

This role is hybrid, based out of Toronto, ON and Boston, MA.

We welcome candidates at various experience levels for this role. During the interview process, candidates will be assessed for the appropriate level, and offers will align with that level, which may differ from the one in this posting.

Who You Are

• Strong Python and PyTorch experience developing and training deep learning models.

• Deep understanding of ML arch

Requirements

Department: AI SW: ML Models