Senior Neuro-Symbolic Systems Engineer

Posted 9 Days Ago
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Redwood City, CA
In-Office
Senior level
Artificial Intelligence • Machine Learning • Robotics • Automation
Building systems of general physical ability to enable superintelligence
The Role
Design and build graph-based representations for autonomous reasoning systems. Integrate symbolic structures into workflows and develop evaluation tools.
Summary Generated by Built In

About Grafton Sciences

We’re building AI systems with general physical ability — the capacity to experiment, engineer, or manufacture anything. We believe achieving this is a key step towards building superintelligence. With deep technical roots and real-world progress at scale (e.g., a $42M NIH project), we’re pushing the frontier of physical AI. Joining us means inventing from first principles, owning real systems end-to-end, and helping build a capability the world has never had before.

About the Role

We’re seeking a Senior Neuro-Symbolic Systems Engineer to design and build the graph-based representations that underpin autonomous reasoning and decision systems. You’ll work on symbolic and relational structures (for example, hypergraphs, dynamic rule systems, and structured planning representations) that allow agents to model complex environments, update internal state, and coordinate across tools and workflows. This role blends ML, symbolic reasoning, and systems engineering.

Responsibilities

• Design and implement structured representations such as hypergraphs, relational models, symbolic planners, or similar abstractions.
• Build update rules, inference mechanisms, and dynamic graph operations that support multi-step reasoning and coordination.
• Work with agent, simulation, and data infrastructure teams to integrate symbolic structures into real workflows.
• Develop tools for evaluating correctness, consistency, and stability of graph-based representations.
• Operate as a cross-functional technical partner to ensure symbolic layers work alongside ML, RL, and systems architecture components.

Qualifications

• Strong background in symbolic AI, knowledge representation, graph systems, computational logic, or neuro-symbolic methods.
• Experience designing or implementing structured representations for planning, reasoning, or complex workflows.
• Familiarity with ML toolchains and comfort bridging symbolic and statistical systems.
• Ability to design abstractions and system architectures that support large-scale, real-time updates.
• High-agency engineer who enjoys defining new structures and building them from first principles.

Above all, we look for candidates who can demonstrate world-class excellence.

Compensation

We offer competitive salary, meaningful equity, and benefits.

Top Skills

Graph Systems
Hypergraphs
Machine Learning
Neuro-Symbolic Ai
Relational Models
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The Company
HQ: Redwood City, CA
15 Employees
Year Founded: 2024

What We Do

Grafton Sciences is pioneering AI systems with general physical ability, the capacity to experiment, engineer, or manufacture anything. By pairing this physical substrate with advanced learning architectures, our goal is to build superintelligence. Backed by leading partners, including ARPA-H, we are redefining how the physical world is queried at scale.

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