Member of Technical Staff (Research Engineering)

ATG intelligence

$120K — $180K *
Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong background in deep learning or reinforcement learning
  • Expert-level Python programming skills
  • Experience with ML frameworks like PyTorch, JAX, TensorFlow
  • Knowledge of distributed computing and large-scale ML pipelines
  • Curiosity and hands-on experimentation skills
  • Expertise with advanced AI tools to enhance productivity and code quality

Responsibilities

  • Prototype and scale experimental models on large data
  • Build tools and pipelines for training and evaluation
  • Implement and iterate on state-of-the-art research
  • Own the full machine learning lifecycle from data to deployment
  • Provide engineering expertise in an autonomous environment

Benefits

  • Opportunity to work on AI with real stakes
  • Join an early team with repeat founders
  • Enjoy a high-agency, low-bureaucracy work environment
Full Job Description
About the Role

You'll bridge research and engineering-rapidly implementing, experimenting with, and scaling new algorithms and models. You'll work closely with scientists and founders to translate ideas into high-performance systems, and will operate across the stack from prototyping to deployment.

Responsibilities
  • Prototype and scale experimental models (LLMs, RL agents, agentic systems) on large, real-world data.
  • Build tools and pipelines for training, evaluation, and analysis.
  • Implement state-of-the-art research from papers and iterate in collaboration with scientists.
  • Own the full ML lifecycle: data engineering, experimentation, training, and deployment.
  • Operate in a highly autonomous, engineering-driven environment.

Requirements
  • Strong background in deep learning, reinforcement learning, or computational modeling.
  • Expert-level Python and significant experience in ML frameworks (PyTorch, JAX, TensorFlow).
  • Ability to translate research into robust, scalable systems.
  • Experience with distributed computing or large-scale ML pipelines.
  • Demonstrated curiosity and hands-on experimentation skills.
  • Expertise in leveraging the latest AI tools (Cursor, Claude Code, Codex, etc) to increase productivity & code output while maintaining high code quality, maintainability, and structure.


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