AI Researcher

Gimlet Labs

$120K — $180K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Master's or PhD in computer science, engineering, applied mathematics, or related field
  • Experience with AI/ML or applied data science
  • Proficiency in AI frameworks like PyTorch, TensorFlow, vLLM, ONNX (preferred)
  • Software development skills in Python and C++ (preferred)
  • Strong statistical analysis skills (preferred)

Responsibilities

  • Monitor and evaluate cutting-edge AI research
  • Research methods to enhance model accuracy, performance, and efficiency
  • Prototype frameworks using advanced fine-tuning and distillation techniques

Benefits

  • Collaborative work environment with a focus on AI innovation
  • Opportunity to contribute to groundbreaking AI inference technology
  • Access to advanced research and development resources
  • Potential for rapid career advancement within a startup culture
  • Chance to work alongside experts from Stanford and industry veterans
Full Job Description
Gimlet Labs is building the foundation for the next generation of AI applications. As generative AI workloads rapidly scale, inference efficiency is becoming the critical bottleneck. Gimlet is redefining AI inference from the ground up, combining cutting-edge research with an integrated hardware-software stack that delivers breakthrough performance, efficiency, and model quality. Gimlet pairs its inference stack with a seamless developer experience, allowing users to deploy, manage, and monitor AI workloads from frameworks like PyTorch and LangChain at production scale in seconds.

Gimlet is spun out of a Stanford research project under Professors Zain Asgar and Sachin Katti. The founding team has deep experience across AI, distributed systems, and hardware with previous successful exits.

Gimlet Labs is seeking an AI Researcher. As an AI Researcher, you will be evaluating and implementing techniques to drive performance and quality optimizations across the latest AI models. The research team is responsible for exploring new model architectures and experimenting with novel inference efficiency techniques such as KV caching and FlashAttention. The team will design and prototype frameworks leveraging fine-tuning and knowledge distillation to push the boundaries of model performance.

Responsibilities:
  • Monitoring and evaluating cutting-edge AI research
  • Researching ways to improve model accuracy, performance and efficiency
  • Prototyping frameworks with the latest fine-tuning and distillation techniques


Qualifications:
  • Master's or PhD degree in computer science, engineering, applied mathematics or comparable area of study
  • Experience with AI/ML or applied data science.


Preferred Qualifications:
  • Experience with PyTorch, TensorFlow, vLLM, ONNX and other AI frameworks
  • Software development experience with Python and C++
  • Understanding of the latest AI research and techniques
  • Strong foundation in statistical analysis

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