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Fluid Power Engineer Jobs in Washington (NOW HIRING)

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Guides students through solving structural analysis problems, computing fluid flow parameters ...

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Guides students through solving structural analysis problems, computing fluid flow parameters ...

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Guides students through solving structural analysis problems, computing fluid flow parameters ...

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Guides students through solving structural analysis problems, computing fluid flow parameters ...

Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ... Guides students through solving structural analysis problems, computing fluid flow parameters ...

Showing results 21-40

Fluid Power Engineer information

See Washington salary details

$25.5K

$110.2K

$193.7K

How much do fluid power engineer jobs pay per year?

As of Aug 22, 2026, the average yearly pay for fluid power engineer in Washington is $110,207.00, according to ZipRecruiter salary data. Most workers in this role earn between $52,700.00 and $151,200.00 per year, depending on experience, location, and employer.

What is a fluid power engineer?

A Fluid Power Engineer designs, analyzes, and optimizes hydraulic and pneumatic systems used in machinery and industrial applications. They work with pumps, valves, actuators, and control systems to improve efficiency, performance, and reliability. Their role often includes troubleshooting, system integration, and collaborating with other engineers to develop innovative solutions. Fluid Power Engineers are commonly employed in industries such as manufacturing, construction, aerospace, and automotive.

What types of projects do fluid power engineers typically work on, and how much collaboration is involved?

Fluid Power Engineers are commonly involved in designing, developing, and troubleshooting hydraulic and pneumatic systems for industries such as manufacturing, automotive, aerospace, and construction. The projects often require close collaboration with cross-disciplinary teams, including mechanical engineers, technicians, and production staff, to create efficient and reliable systems within specified timelines and budgets. Daily tasks can range from concept development and system modeling to on-site testing and system optimization. Teamwork and strong communication are integral, as projects frequently involve integrating fluid power solutions into larger machinery or production processes.

What are the key skills and qualifications needed to thrive as a fluid power engineer, and why are they important?

To thrive as a Fluid Power Engineer, you need a strong background in mechanical engineering principles, fluid dynamics, and hydraulic and pneumatic system design, often supported by a relevant engineering degree. Experience with CAD software (such as SolidWorks or AutoCAD), simulation tools, and industry certifications like Certified Fluid Power Specialist (CFPS) is highly valuable. Effective problem-solving, clear communication, and teamwork skills set candidates apart in this field. These competencies are essential to ensure safe, efficient, and innovative fluid power system solutions for diverse industrial applications.

What are popular job titles related to Fluid Power Engineer jobs in Washington?

For Fluid Power Engineer jobs in Washington, the most frequently searched job titles are:

What job categories do people searching Fluid Power Engineer jobs in Washington look for?

The top searched job categories for Fluid Power Engineer jobs in Washington are:

Infographic showing various Fluid Power Engineer job openings in Washington as of August 2026, with employment types broken down into 83% Full Time, 7% Part Time, 2% Temporary, 7% Contract, and 1% Nights. Highlights an 87% Physical, 2% Hybrid, and 11% Remote job distribution, with an average salary of $110,207 per year, or $53 per hour.

System Engineer Skill Level 3

Avid Technology Professionals

Annapolis Junction, MD • On-site

Full-time

Re-posted 8 days ago


Job description

Perform systems engineering functions, including defining and documenting concept of operations, operational/system requirements, and use cases to support system development; performing high-level system design; specifying system/component performance and interface requirements; and developing installation, integration, and acceptance test plans. Continuously assess existing organizational processes and work products to ensure they best facilitate strategic and tactical efforts. Coordinate with customers, project teams, and related organizations to ensure solutions satisfy the requirements. Define and communicate a shared technical and architectural vision for the solutions developed by the product teams.
Bachelor's degree in Engineering plus 10 years of relevant experience, or a Master's degree plus 8 years of relevant experience, or a Doctoral degree plus 6 years of relevant experience. 
 Degree must be in Engineering or a relevant technical field (for example, computer science, mathematics, or physics). 
For all of the above degrees, if program is not ABET accredited, it must include specified coursework.*
*Specified coursework includes courses in differential and integral calculus and 5 of the following 18 areas: (a) statics or dynamics, (b) strength of materials/stress-strain relationships, (c) fluid mechanics, hydraulics, (d) thermodynamics, (e) electromagnetic fields, (f) nature and properties of materials/relating particle and aggregate structure to properties, (g) solid state electronics, (h) microprocessor applications, (i) computer systems, (j) signal processing, (k) digital design, (l) systems and control theory, (m) circuits or generalized circuits, (n) communication systems, (o) power systems, (p) computer networks, (q) software development, (r) any other comparable area of fundamental engineering science or physics, such as optics, heat transfer, or soil mechanics. 
Relevant experience must be in engineering systems over their lifecycle (for example, conception, design & development, testing, production, distribution/deployment, operation, maintenance & support, decommissioning).