Full-Time

Member of Technical Staff

Post-Training

Chakra Labs

Chakra Labs

11-50 employees

Deterministic RL environments and datasets

No salary listed

New York, NY, USA + 1 more

More locations: Brooklyn, NY, USA

In Person

Category
Software Engineering (1)
Required Skills
FastAPI
Python
PyTorch
Machine Learning
Reinforcement Learning

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Requirements
  • Demonstrate Masters / PhD-level knowledge of machine learning fundamentals, including linear algebra, optimization, and stochastic gradient descent.
  • Have worked with or deeply understand large language model fine-tuning, preference data, reward modeling, or reinforcement learning for language models.
  • Be interested in agent environments, multi-turn tool use, sandboxed tasks, evaluation harnesses, and testing capabilities beyond standard benchmarks.
  • Demonstrate strong proficiency in Python and be comfortable building with PyTorch, FastAPI, and modern machine learning infrastructure.
  • Be able to move between research ambiguity and production constraints and assess when results are too fragile to trust.
  • Be willing to work in an ambiguous environment without a fixed playbook.
Responsibilities
  • Design and run model improvement workflows using supervised fine-tuning, preference optimization, and reinforcement learning approaches such as GRPO.
  • Design environments, tasks, tools, validators, reward signals, and evaluation harnesses for agent capabilities.
  • Create, inspect, and improve high-fidelity trajectories and training data for frontier models.
  • Develop reward functions, rubrics, validators, and analysis tools that produce useful and robust training signals.
  • Run experiments across distributed GPU clusters using PyTorch and FSDP.
  • Build infrastructure supporting model training, evaluation, and data generation at scale.
  • Translate ambiguous research goals from frontier AI labs into concrete environments, datasets, experiments, and deliverables.
  • Own end-to-end technical problems, including environment design, training-run debugging, reward-function improvement, and evaluation-pipeline scaling.
Desired Qualifications
  • Approximately 3–5 years of experience, although other experience levels may be suitable.

Chakra Labs provides research-grade infrastructure for building and training AI agents. It offers deterministic, pixel-perfect reinforcement learning environments, high-fidelity trajectory datasets, and mixed-modality training capabilities. Practically, developers use Chakra Labs’ simulated worlds to run agent-environment loops, collect precise interaction data, and train agents on complex tasks. The environments are frame-accurate, enabling precise control over state and observations, which helps generate reliable data and reproducible experiments. Compared with typical AI tooling, Chakra Labs emphasizes deterministic, high-fidelity simulations and frontier data collaboration to support frontier-defining research problems. The goal is to give researchers and developers reliable tools and data to design, train, and evaluate capable AI agents for advanced tasks.

Company Size

11-50

Company Stage

N/A

Total Funding

N/A

Headquarters

N/A

Founded

2024

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Simplify Jobs

Simplify's Take

What believers are saying

  • Chakra raised $10.1 million in January 2026, supporting runway and product iteration.
  • Dojo launched October 2025 and now lists hiring, signaling active execution.
  • Public positioning shifted to frontier data laboratory, matching demand for agent training data.

What critics are saying

  • OpenAI, Anthropic, Google, and Cua commoditize computer-use infrastructure by 2026.
  • Chakra has no verified customers; unnamed research teams do not prove durable revenue.
  • A crowded vendor set from Scale AI, HUD, and AfterQuery can crush pricing.

What makes Chakra Labs unique

  • Dojo clones production software with frame-accurate state capture and deterministic environments.
  • Chakra targets computer-use RL, not generic agent tooling, with mixed-modality trajectory datasets.
  • Founder Alexander Fung and Nirmal Krishnan built a frontier-data lab, not a SaaS wrapper.

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Growth & Insights

Headcount

6 month growth

7%

1 year growth

7%

2 year growth

7%