1

Material Science Jobs in Everett, WA (NOW HIRING)

A doctorate in Physics, Chemistry, Materials Science or a related field, with postdoctoral or industry experience and a track record of carrying research forward independently. * Deep expertise in ...

A doctorate in Physics, Chemistry, Materials Science or a related field, with postdoctoral or industry experience and a track record of carrying research forward independently. * Deep expertise in ...

Materials & Process Engineer

Everett, WA ยท On-site

$121K - $165K/yr

Bachelor of Science or greater in Material Science, Chemical Engineering, or related field. * 7+ years of relevant experience in a highly regulated industry (aerospace preferred). Preferred ...

HW Dev Engr III - AMZ9971139

Seattle, WA ยท On-site

$165K - $185K/yr

Bachelor's degree or foreign equivalent degree in Engineering, Computer Science, Physics, Material Science, or a related field, and three years of experience in the job offered or a related ...

next page

Showing results 1-20

Material Science information

See Everett, WA salary details

$10

$24

$34

How much do material science jobs pay per hour?

As of Aug 10, 2026, the average hourly pay for material science in Everett, WA is $24.53, according to ZipRecruiter salary data. Most workers in this role earn between $20.72 and $27.88 per hour, depending on experience, location, and employer.

What jobs can you do with material science?

Material science graduates can pursue careers as materials engineers, research scientists, quality control analysts, or product development specialists. These roles involve analyzing, testing, and developing materials such as metals, polymers, ceramics, and composites, often requiring knowledge of laboratory techniques and computer-aided design tools.

What are the key skills and qualifications needed to thrive in a material science position, and why are they important?

To thrive in Material Science, you need a solid background in physics, chemistry, materials engineering, and problem-solving, usually supported by at least a bachelor's degree in materials science or a related discipline. Familiarity with scientific instrumentation, materials characterization software, and quality control systems is often required, along with certifications such as Six Sigma or experience with ISO standards. Strong analytical thinking, clear communication, and collaborative skills distinguish outstanding professionals in this field. These competencies enable effective research, innovation, and seamless teamwork in developing and optimizing new materials for various industries.

How hard is it to get a job in material science?

Securing a job in material science can be competitive and typically requires a relevant degree such as a bachelor's or master's in materials science, engineering, or related fields. Strong skills in laboratory techniques, data analysis, and familiarity with tools like microscopy or spectroscopy can improve employment prospects, which may also involve internships or research experience.

What are some typical projects and day-to-day tasks in a material science position?

Material Science professionals often engage in researching, testing, and developing new materials or improving existing ones to meet specific industry needs. Typical tasks might include preparing and analyzing material samples, conducting experiments in labs, interpreting test data, and collaborating closely with engineering or product development teams. You may also be involved in troubleshooting manufacturing processes or supporting quality assurance efforts. These roles frequently require documenting findings, presenting results, and contributing to cross-departmental meetings, making every day varied and dynamic. Many positions offer hands-on involvement as well as opportunities for cross-functional teamwork.

What is a material science?

A Material Science job involves researching, developing, and testing materials to improve their properties for various applications. Material scientists work with metals, ceramics, polymers, and composites to enhance performance in industries like aerospace, healthcare, and manufacturing. They analyze the structure and properties of materials to innovate and create new products or improve existing ones. These professionals often collaborate with engineers and manufacturers to ensure materials meet required standards for durability, sustainability, and cost-effectiveness.

What jobs can I get with a material science degree?

A material science degree qualifies individuals for roles such as materials engineer, research scientist, quality control analyst, and product development engineer. These jobs often require knowledge of materials properties, testing methods, and proficiency with tools like microscopy and spectroscopy, with opportunities in industries like aerospace, automotive, electronics, and manufacturing.

Is material science a good career?

Material science is a viable career that involves studying and developing materials such as metals, polymers, ceramics, and composites for various industries. It often requires strong knowledge of chemistry, physics, and engineering, and offers opportunities in research, manufacturing, and product development with steady demand. Job prospects can be enhanced through advanced degrees and proficiency with tools like microscopy and spectroscopy.
What cities near Everett, WA are hiring for Material Science jobs? Cities near Everett, WA with the most Material Science job openings:
Infographic showing various Material Science job openings in Everett, WA as of August 2026, with employment types broken down into 1% Internship, 1% As Needed, 71% Full Time, 25% Part Time, and 2% Contract. Highlights an 76% Physical, 4% Hybrid, and 20% Remote job distribution, with an average salary of $51,015 per year, or $24.5 per hour.

Staff Scientist - Materials Science

IonQ

Bothell, WA โ€ข On-site, Remote

Full-time

Posted 10 days ago


Job description

Location: This role is based at our Bothell, WA office, operating in a hybrid working model.ย 
Travel: Up to 5%
Job ID:
1757

The Role:ย 

IonQ, Inc. [NYSE: IONQ] is the world's leading quantum company delivering solutions to solve the world's most complex problems. IonQ's newest generation quantum computers, IonQ Tempo and IonQ Forte Enterprise, are the latest in cutting-edge systems that have been helping customers and partners such as Amazon Web Services, AstraZeneca, and NVIDIA achieve 20x performance results. The company achieved 99.99% two-qubit gate fidelity, setting a world record in quantum computing performance in 2025.

The company is accelerating its technology roadmap and intends to deliver the world's most powerful quantum computers with 2 million qubits by 2030 to accelerate innovation in drug discovery, materials science, financial modeling, logistics, cybersecurity, and defense. IonQ's advancements in quantum networking position the company as a leader in building the quantum internet.

We are looking for a Staff Scientist, Materials Science to join the Computational Sciences team at IonQ. This is a newly formed group within Applications R&D, focused on general physics problems in condensed matter and high energy physics alongside combinatorial optimization. You will bring dedicated condensed matter and high energy physics capability into the team, working on problems that today are delivered through a borrowed virtual team drawn from across the organisation.

The work sits at the meeting point of traditional classical simulation and fault-tolerant quantum computing. You will bring judgement about where each approach earns its place, working independently against goals and helping shape how IonQ tackles real scientific problems as the company moves towards fault-tolerant applications.

Responsibilities:

In this position you will lead scientific work on condensed matter and high energy physics problems, connecting them to quantum computation. On the condensed matter side this covers magnetic systems, phase transitions, spintronics, strongly correlated spin dynamics, spin liquids and high temperature superconductivity, including Fermi-Hubbard models, optical conductivity and eta pairing. On the high energy physics side it covers 2+1D systems, lattice QCD and lattice gauge theory.

A particular focus is comparing results computed on quantum computers against experimental data such as neutron scattering, using dynamical structure factors, spectral functions and spin transport. You will pair these quantum approaches with established classical simulation methods rather than treating them as alternatives.

Key responsibilities include:

  • Lead condensed matter and high energy physics application projects, working independently against agreed goals.
  • Connect physics problems to quantum computation, selecting appropriate fault-tolerant algorithms and mapping problems onto quantum-native formulations.
  • Combine classical simulation and HPC workloads with quantum methods in integrated end-to-end workflows.
  • Compare computed results against experimental data, including neutron scattering observables such as dynamical structure factors and spectral functions.
  • Collaborate with other fault-tolerant algorithms researchers and with the quantum chemistry and software engineering teams, and contribute to publications and external technical representation.

Requirements:

To be successful you will need genuine subject matter depth in condensed matter or high energy physics, combined with a working understanding of how fault-tolerant quantum algorithms are used to solve real problems. You will be comfortable working across classical simulation and quantum methods, and using scientific programming to integrate tools, run computations and maintain a code base.

You would be a great fit with:

  • A doctorate in Physics, Chemistry, Materials Science or a related field, with postdoctoral or industry experience and a track record of carrying research forward independently.
  • Deep expertise in condensed matter or high energy physics: magnetic systems, strongly correlated materials, superconductivity, spin dynamics, Fermi-Hubbard models, lattice gauge theory or related areas.
  • Experience with classical simulation methods and HPC workloads for these problems, ideally including packages such as QuantumATK, QuantumEspresso or VASP, and an understanding of how to integrate classical and quantum approaches.
  • Familiarity with fault-tolerant quantum algorithms and their applications.
  • Scientific programming in Python and C++ sufficient to integrate tools, run computations and maintain a code base in version control.
  • Also valuable: hands-on use of classical packages including QuantumATK, QuantumEspresso or VASP; the ability to design novel fault-tolerant algorithms; a peer-reviewed publication record; client or partner facing delivery experience; active participation in the fault-tolerant quantum computing community through tools, metrics, talks, repositories or patents; and familiarity with agentic AI tooling such as OpenAI Codex or Anthropic Claude Code.

Also valuable, though not expected in every applicant: experience comparing simulation results against experimental data such as neutron scattering; hands-on use of classical packages including QuantumATK, QuantumEspresso or VASP; the ability to design novel fault-tolerant algorithms; a peer-reviewed publication record; client or partner facing delivery experience; active participation in the fault-tolerant quantum computing community through tools, metrics, talks, repositories or patents; and familiarity with agentic AI tooling such as OpenAI Codex or Anthropic Claude Code.

The total compensation package includes base, bonus, equity, and a range of benefit options found on our career site.