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Member of Technical Staff, MLE

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Cohere

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Location:
Singapore

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Contract Type:
Not provided

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Salary:

Not provided

Job Description:

This is not a typical “Applied Scientist” or “ML Engineer” role. As a Member of Technical Staff, Applied ML, you will: Work directly with enterprise customers on problems that push LLMs to their limits. You’ll rapidly understand customer domains, design custom LLM solutions, and deliver production-ready models that solve high-value, real-world problems. Train and customize frontier models — not just use APIs. You’ll leverage Cohere’s full stack: CPT, post-training, retrieval + agent integrations, model evaluations, and SOTA modeling techniques. Influence the capabilities of Cohere’s foundation models. Techniques, datasets, evaluations, and insights you develop for customers will directly shape the next generation of Cohere’s frontier models. Operate with an early-startup level of ownership inside a frontier-model company. This role combines the breadth of an early-stage CTO with the infrastructure and scale of a deep-learning lab. Wear multiple hats, set a high technical bar, and define what Applied ML at Cohere becomes. Few roles in the industry combine application, research, customer-facing engineering, and core-model influence as directly as this one.

Job Responsibility:

  • Contribute to the design and delivery of custom LLM solutions for enterprise customers
  • Translate ambiguous business problems into well-framed ML problems with clear success criteria and evaluation methodologies
  • Build custom models using Cohere’s foundation model stack, CPT recipes, post-training pipelines (including RLVR), and data assets
  • Develop SOTA modeling techniques that directly enhance model performance for customer use-cases
  • Contribute improvements back to the foundation-model stack — including new capabilities, tuning strategies, and evaluation frameworks
  • Work as part of Cohere’s customer facing MLE team to identify high-value opportunities where LLMs can unlock transformative impact to our enterprise customers

Requirements:

  • Strong ML fundamentals and the ability to frame complex, ambiguous problems as ML solutions
  • Fluency with Python and core ML/LLM frameworks
  • Experience working with (or the ability to learn) large-scale datasets and distributed training or inference pipelines
  • Understanding of LLM architectures, tuning techniques (CPT, post-training), and evaluation methodologies
  • Demonstrated ability to meaningfully shape LLM performance
  • A broad view of the ML research landscape and a desire to push the state of the art
  • Bias toward action, high ownership, and comfort with ambiguity
  • Humility and strong collaboration instincts
  • A deep conviction that AI should meaningfully empower people and organizations
What we offer:
  • An open and inclusive culture and work environment
  • Work closely with a team on the cutting edge of AI research
  • Weekly lunch stipend, in-office lunches & snacks
  • Full health and dental benefits, including a separate budget to take care of your mental health
  • 100% Parental Leave top-up for up to 6 months
  • Personal enrichment benefits towards arts and culture, fitness and well-being, quality time, and workspace improvement
  • Remote-flexible, offices in Toronto, New York, San Francisco, London and Paris, as well as a co-working stipend
  • 6 weeks of vacation (30 working days!)

Additional Information:

Job Posted:
February 20, 2026

Employment Type:
Fulltime
Work Type:
Remote work
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