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Quantum Hardware Engineer Jobs in Arizona (NOW HIRING)

Senior Engineer, Chips About Us Quantum Computing Inc. (QCi) (Nasdaq: QUBT) is an innovative ... Collaborate with equipment and process engineers to support experiments, hardware changes, and ...

Senior Engineer, Chips About Us Quantum Computing Inc. (QCi) (Nasdaq: QUBT) is an innovative ... Collaborate with equipment and process engineers to support experiments, hardware changes, and ...

Senior Engineer, Chips About Us Quantum Computing Inc. (QCi) (Nasdaq: QUBT) is an innovative ... Collaborate with equipment and process engineers to support experiments, hardware changes, and ...

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Quantum Hardware Engineer information

See Arizona salary details

$47.5K

$136.3K

$183.1K

How much do quantum hardware engineer jobs pay per year?

As of Jul 30, 2026, the average yearly pay for quantum hardware engineer in Arizona is $136,270.00, according to ZipRecruiter salary data. Most workers in this role earn between $115,100.00 and $151,900.00 per year, depending on experience, location, and employer.

What engineers make $300,000 a year?

Senior engineers in specialized fields such as quantum hardware engineering, software engineering, and data science can earn $300,000 or more annually, especially with extensive experience, advanced skills, and working in high-demand industries or companies. These roles often require advanced degrees, certifications, and expertise in cutting-edge technologies or tools.

What is the difference between Quantum Hardware Engineer vs Quantum Software Engineer?

AspectQuantum Hardware EngineerQuantum Software Engineer
Required CredentialsBachelor's/Master's in Physics, Electrical Engineering, or related fields; experience with hardware design and fabricationBachelor's/Master's in Computer Science, Software Engineering, or related; programming skills in Python, C++, or similar
Work EnvironmentLaboratories, hardware prototyping facilities, clean roomsSoftware development environments, cloud platforms, simulation tools
Employer & Industry UsageQuantum tech companies, research labs, hardware manufacturersTech firms, research institutions, software companies working on quantum algorithms

Quantum Hardware Engineers focus on designing, building, and testing physical quantum devices, while Quantum Software Engineers develop algorithms and software to run on quantum hardware. Both roles are essential in advancing quantum technology but differ in their focus and skill sets.

What are some common challenges faced by Quantum Hardware Engineers when scaling up quantum systems?

Quantum Hardware Engineers often encounter significant challenges when scaling quantum systems, such as maintaining qubit coherence and minimizing error rates as the number of qubits increases. Integrating control electronics and cryogenic systems while ensuring signal fidelity is another complex aspect of the role. Collaboration with physicists, materials scientists, and software engineers is essential to troubleshoot hardware limitations and develop scalable architectures. Overcoming these challenges requires creative problem-solving and a multidisciplinary approach, making the role both demanding and highly rewarding.

What engineers make $500,000?

Senior engineers in specialized fields such as software engineering, data engineering, and certain hardware engineering roles can earn $500,000 or more annually, especially with experience, bonuses, and stock options. High-level positions often require advanced skills, certifications, and leadership responsibilities within large companies or tech firms.

What are Quantum Hardware Engineers?

Quantum Hardware Engineers are professionals who design, develop, and maintain the physical systems that enable quantum computing. They work on building and optimizing quantum processors, cryogenic systems, control electronics, and other hardware components necessary for quantum computers. Their role is essential for advancing the practical implementation of quantum technologies, collaborating closely with physicists, software engineers, and researchers to push the boundaries of computational power. These engineers often have backgrounds in physics, electrical engineering, or materials science, and are skilled in both theoretical and hands-on laboratory work.

How much does a quantum hardware engineer make?

The average salary for a quantum hardware engineer ranges from $80,000 to $150,000 annually, depending on experience, education, and location. Senior roles or those with specialized skills in cryogenics, quantum circuits, or fabrication may earn higher salaries, often exceeding $180,000.

What does a quantum hardware engineer do?

A quantum hardware engineer designs, develops, and tests physical components of quantum computers, such as qubits, superconducting circuits, and cryogenic systems. They work with specialized tools and materials, often requiring knowledge of quantum physics, electrical engineering, and cryogenics, to improve the stability and performance of quantum devices.

What are the key skills and qualifications needed to thrive as a Quantum Hardware Engineer, and why are they important?

To thrive as a Quantum Hardware Engineer, you need a deep understanding of quantum physics, electrical engineering, and materials science, often supported by an advanced degree (such as a PhD) in a related field. Familiarity with technical tools like cryogenic systems, microwave electronics, and quantum measurement instruments, as well as programming languages such as Python, is typically required. Strong problem-solving abilities, attention to detail, and effective collaboration skills distinguish top candidates in this role. These competencies are critical for designing, building, and optimizing complex quantum devices that advance the field of quantum computing.
What are popular job titles related to Quantum Hardware Engineer jobs in Arizona? For Quantum Hardware Engineer jobs in Arizona, the most frequently searched job titles are:
What job categories do people searching Quantum Hardware Engineer jobs in Arizona look for? The top searched job categories for Quantum Hardware Engineer jobs in Arizona are:
What cities in Arizona are hiring for Quantum Hardware Engineer jobs? Cities in Arizona with the most Quantum Hardware Engineer job openings:
Infographic showing various Quantum Hardware Engineer job openings in Arizona as of July 2026, with employment types broken down into 93% Full Time, 4% Part Time, and 3% Contract. Highlights an 87% Physical, 4% Hybrid, and 9% Remote job distribution, with an average salary of $136,270 per year, or $65.5 per hour.

Process Engineer Metrology & Yield Enhancement

Quantum Computing Inc.

Tempe, AZ • On-site

Full-time

Re-posted 17 days ago


Job description

Process Engineer Metrology & Yield Enhancement
Location : Tempe, AZ or Hoboken, NJ or Remote
Division: Engineering
Department : Operations
Reports to : Director of Management Operations
About Us
Quantum Computing Inc. (QCi) (Nasdaq: QUBT) is an innovative, integrated photonics company that provides accessible and affordable quantum machines to the world today. QCi products are designed to operate at room temperature and low power at an affordable cost. The Company's portfolio of core technology and products offer unique capabilities in the areas of high-performance computing, artificial intelligence, cyber security as well as remote sensing applications.
Position Description
This position is responsible for overseeing the development of a 150 mm wafer line based on QCi's thin film lithium niobate (TELN) technology. The successful candidate will work in close collaboration with both the process development and integration team as well as the quantum optics team to develop and continuously improve high volume manufacturable metrology and test point processes for our TFLN products. These processes are designed to monitor line health, feed forward critical process and equipment data to optimize product yields, This candidate also plays a key role in facilitating short term SWAT teams when urgent line impacting defect investigations arise. The candidate will be responsible for designing, developing, deploying and optimizing metrology processes for measuring TFLN devices to achieve safety, quality, cost, and delivery goals for QCi and its customer products. The candidate will work closely with a team of process and equipment engineers and technicians to continuously improve their workflow with the goal of enhancing yield of TFLN devices and creating robust reliable manufacturing processes. Furthermore, the candidate will coordinate the factory metrology and diagnostic equipment calibration program.
Duties and Responsibilities
  • Lead the development and optimization of photolithography and/or wet processes for compound semiconductor applications.
  • Drive process integration and improvement initiatives to enhance device performance and yield.
  • Work closely with the process team in the cleanroom to optimize associated metrology measurements in the fabrication flow of TFLN chips
  • Facilitate the transition of research level chip scale production, to low, to middle volume manufacture at wafer scale
  • Utilize advanced metrology tools such as CD SEM, AFM, ellipsometry, profilometry, XPS, XRD, and optical interferometry for process characterization and defect analysis.
  • Work closely with integration, production, and device engineering teams to integrate photo and/or wet processes into the overall semiconductor fabrication flow.
  • Troubleshoot process deviations, particle contamination, and unit performance issues, implementing corrective actions and continuous improvement strategies.
  • Establish and maintain SPC for process monitoring and optimization.
  • Evaluate and qualify new photo and/or wet chemistries, masks, hardware configurations, and process automation tools.
  • Develop and document process recipes, work instructions, and standard operating procedures (SOPs).
  • Mentor junior engineers and provide /or leadership in semiconductor photo, wet, mask, and associated metrology.

Required Skills and Experience
  • 5+ years' experience in Process Development and Continuous Improvement through predictive/preventive metrology measurement & yield enhancement analysis programs
  • Optical modeling and analysis for coherent micro-optical and photonic systems to understand how systems and in new and novel ways to create, deliver and measure light in our next generation quantum computer systems
  • Apply advanced statistical and analytical methods to identify, quantify, and control risk in complex manufacturing environments.
  • Translate PFMEA outputs into actionable process controls, ensuring proactive prevention of variation rather than reactive correction.
  • Define and implement the inspection methods, calibration systems, and SOPs.
  • Manage calibration programs and maintain compliance with ISO and customer quality standards.
  • Deploy advanced sampling strategies, SPC controls, Cp/Cpk, GR&R, and integrate Minitab/JMP analytics into daily operations.
  • Experience with process characterization and metrology techniques such as/or equivalent SEM, AFM, KLA Optical profiler, Stylus profiler, microscope, spectral analysis, and ellipsometry.

Preferred Skills and Experience
  • 10+ years' experience in Metrology & Yield Enhancement Process development, process integration
  • Experience and understanding of microfabrication for photonics devices, process integration, photonic materials properties and modification, and the incorporation of MEMS and electronic devices. Specific knowledge of lithography, etching, deposition, and associated processing is highly valued.
  • Apply large-scale data analytics to Track-and-Trace datasets, enabling predictive insights and real-time defect containment.
  • Experience with heterogeneous bonding between wafers and chips is valued.
  • Experience working with 5S, and 6 Sigma

Incumbent(s) in this position may be required to perform other duties and special assignments not specifically stated above. Statements outlined in this section are designated as essential job functions in accordance with the Americans with Disabilities Act of 1990.