Helix AI Engineer, Agentic Systems
Figure — Tracked from its greenhouse job board
About the role
Figure AI is an AI robotics company developing autonomous general-purpose humanoid robots. The goal of the company is to ship humanoid robots with human-level intelligence. Its robots are engineered to perform a variety of tasks in the home and commercial markets. Figure is headquartered in San Jose, CA.
Our goal is to create embodied AI systems that can perceive the world through pixels, reason over memory, and reliably execute complex tasks over minutes to hours in real environments. We are looking for a Helix AI Engineer, Agentic Systems experienced in building multimodal reasoning systems—agents that operate autonomously from raw sensory input, maintain episodic memory, plan over long horizons, and execute reliably within structured evaluation harnesses, e.g. pixels-to-actions computer use agents. This role focuses on developing the agent architectures and infrastructure that enable robots to function as persistent, reliable embodied agents in the real world.
Responsibilities
Design, train, and deploy multimodal agents that operate autonomously for hours to days
Build agents that reason from raw sensory inputs (pixels, environment state, proprioception) to structured actions
Implement episodic memory systems for persistent state, retrieval, and long-horizon reasoning
Develop planning, reasoning, and tool-use mechanisms for multi-step task execution
Build reliable perception → reasoning → action loops with strong stability and failure recovery
Design evaluation harnesses, benchmarks, and metrics to measure agent reasoning, planning, and reliability
Design and run data studies across the training lifecycle , including pretraining, mid-training, and post-training
Apply reinforcement learning, reward modeling, and post-training techniques to improve agent reasoning and reliability in real-world environments
Develop evaluation frameworks and benchmarks to measure robot reasoning, planning, and task success across diverse scenarios
Build infrastructure for scalable model training, distributed experimentation, and agent evaluation
Work closely with other teams to integrate agent models into the full humanoid autonomy stack
Requirements
Experience building autonomous agents that run continuously and complete multi-step tasks
Experience developing agents that reason from pixel inputs or raw environment observations
Experience implementing agent memory, planning, reasoning, or tool-use systems
Experience training or fine-tuning multimodal or foundation models
Strong proficiency in Python and modern deep learning frameworks (e.g., PyTorch)
Strong experimental rigor and ability to design, analyze, and iterate on ML systems
Strong software engineering skills and ability to build reliable, maintainable systems
Ability to work independently and own complex technical problems end-to-end
Bonus Qualifications
Experience with embodied AI, robotics learning, or robot policy training
Experience building multimodal foundation models (vision-language or vision-language-action)
Background in agentic AI systems or long-horizon planning architectures
Experience working with large-scale distributed training systems
Publication record in machine learning, robotics, or embodied AI
Passion for building autonomous humanoid robots that operate in the real world
The US base salary range for this full-time position is between $200,000 - $400,000 annually.
The pay offered for this position may vary based on several individual factors, including job-related knowledge, skills, and experience. The total compensation package may also include additional components/benefits depending on the specific role. This information will be shared if an employment offer is extended.
What the index says about this role
- First seen by JobLarper — Aug 2, 2026, 6 days ago. Older postings collect hundreds of applicants — a tailored résumé matters more the longer a role has been live.
- No pay range in our index for this listing. Across 193 indexed Machine Learning Engineer roles in US that do publish one, the middle half sits between $213k and $300k, median $250k — JobLarper's read of the market, not a figure from Figure.
- What Machine Learning Engineer roles ask for — across 1,108 indexed openings: ML (78%), AI/LLM (55%), Python (53%), REST/APIs (38%), Cloud (25%). This posting names ML, AI/LLM, Python.
- Figure is hiring actively — 51 open roles indexed.
Derived from the 27,000 roles JobLarper indexes daily from official company boards — not from the job description above.
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