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$200k – $400k per year
Location
Remote/Hybrid (New York, United States, London, United Kingdom, Copenhagen, Denmark)
Employment
Full-Time
Overview
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Normal Computing is an artificial intelligence and semiconductor technology company headquartered in New York City, New York, and founded in 2022. The firm develops a full-stack platform including AI-native Electronic Design Automation software and thermodynamic Application-Specific Integrated Circuits designed to optimize AI inference and long-context reasoning. Backed by investors such as Samsung Catalyst, the company partners with major semiconductor manufacturers to deploy its co-design solutions for complex system-on-chip verification and hardware acceleration.

Normal Computing | Build with Us

Normal is an applied AI company solving the hardest problems in AI and silicon. We build foundational hardware and software for the semiconductor industry, critical AI infrastructure, and the broader systems that power our world, in partnership with the world's most advanced institutions. We work as one team across New York City, San Francisco, London, Copenhagen, and Pangyo.

The Role

You will develop the computational methods that make AI inference run efficiently on Normal's thermodynamic hardware. The core challenge is not adapting standard GPU kernels to a new chip. It is rethinking how operations like attention, memory access, and long-context decoding behave when the underlying substrate uses stochastic analog computation in memory rather than conventional digital logic.

Normal's ASICs run the heaviest operations of large model inference inside memory itself. Your job is to develop the algorithms that exploit this natively: understand what transformer and diffusion workloads are well-suited to stochastic analog execution, design numerical methods that map onto the hardware's physical dynamics, and validate them against real silicon or high-fidelity simulation.

This is a co-design role. The hardware and the algorithms are developed in parallel, which means you will influence architectural decisions, not just implement against a fixed specification. The strongest candidates have a deep understanding of both large model inference and the mathematics of stochastic systems, and have built systems that run on real hardware, not just in theory.

What You Will Own

  • Algorithm Development: Develop algorithms for transformer inference workloads running on stochastic analog processing-with-memory hardware.

  • Software/Hardware Co-Design: Work directly with hardware and architecture teams to shape what the chip can and should compute natively.

  • Numerical Methods: Design numerical methods that exploit thermal noise and analog dynamics rather than working around them.

  • Evaluation & Benchmarks: Build evaluation frameworks and benchmarks that characterize algorithm behavior on real hardware or simulation.

  • Workload Translation: Translate insights about model workloads into constraints and opportunities for hardware design.

  • Rapid Prototyping: Prototype and iterate rapidly as hardware evolves from simulation to silicon.

  • Optimizing Performance: at the gate level and the algorithmic level. and algorithms (expand/review), reinforcement learning tools.

What Makes You a Great Fit

  • Deep understanding of large model inference: attention mechanisms, KV cache, long-context decoding, memory bandwidth constraints

  • Experience with inference optimization: quantization, sparsity, kernel fusion, or memory-efficient attention

  • Familiarity with stochastic systems, probabilistic methods, numerical analysis, or analog computation

  • Experience implementing algorithms close to hardware, not just in high-level frameworks

  • Comfort reasoning from first principles about what a novel substrate can do efficiently

  • Track record of taking ideas from theory to working implementation on real hardware

  • Strong programming skills in Python and at least one systems language

  • Collaborative instinct and ability to work across hardware, architecture, and software teams

Bonus Points

  • PhD in machine learning, applied mathematics, physics, electrical engineering, or a related field

  • Exposure to analog or mixed-signal systems, in-memory compute, or non-von-Neumann architectures

  • Experience working on hardware that did not yet exist when you joined

  • Publications or open-source work in efficient inference, stochastic algorithms, or novel computing

Equal Employment Opportunity Statement

Normal Computing is an Equal Opportunity Employer. We celebrate diversity and are committed to creating an inclusive environment for all employees. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, veteran status, or any other legally protected status.

Accessibility Accommodations

Normal Computing is committed to providing reasonable accommodations to individuals with disabilities. If you need assistance or an accommodation due to a disability, please let us know at [email protected].

Privacy Notice

By submitting your application, you agree that Normal Computing may collect, use, and store your personal information for employment-related purposes in accordance with our Privacy Policy.

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