Job Description
Join the forefront of technological revolution as a Quantum Infrastructure Engineer at Nexus Systems Inc. We're pioneering the next generation of quantum computing platforms that will redefine computational boundaries by 2026. This senior role demands visionary thinkers who can architect quantum-classical hybrid systems while ensuring seamless integration with legacy infrastructure.
You'll collaborate with Nobel laureates and industry disruptors in our state-of-the-art San Francisco R&D facility, where we're developing quantum-resistant cryptography frameworks and error-corrected qubit arrays. The ideal candidate thrives at the intersection of theoretical physics and scalable system architecture, transforming quantum algorithms into production-ready solutions that will power breakthroughs in materials science and AI.
Responsibilities
- Design and implement fault-tolerant quantum computing architectures operating at millikelvin temperatures
- Develop quantum-classical hybrid interfaces using proprietary cryogenic control systems
- Lead integration of quantum-resistant cryptographic protocols into enterprise networks
- Optimize qubit coherence times through advanced error correction algorithms
- Architect scalable cryogenic cooling infrastructure supporting 10,000+ qubit arrays
- Collaborate with quantum algorithm teams to translate theoretical models into hardware specifications
- Establish industry benchmarks for quantum system reliability and performance metrics
Qualifications
- PhD in Quantum Physics, Computer Engineering, or related field with 5+ years industry experience
- Expertise in quantum error correction codes (surface codes, color codes)
- Proficiency in cryogenic engineering and superconducting circuit design
- Advanced knowledge of quantum machine learning frameworks (Qiskit, Cirq)
- Published research in Nature/Science journals on quantum computing breakthroughs
- Experience with quantum-resistant cryptography standards (NIST PQC candidates)
- Strong background in distributed systems architecture at petascale scale