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Fluid Power Engineering 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 Engineering information

See Washington salary details

$52.7K

$166.3K

$197.1K

How much do fluid power engineering jobs pay per year?

As of Aug 7, 2026, the average yearly pay for fluid power engineering in Washington is $166,342.00, according to ZipRecruiter salary data. Most workers in this role earn between $131,900.00 and $195,900.00 per year, depending on experience, location, and employer.

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 solid background in mechanical or hydraulic engineering, fluid mechanics, and system design, typically supported by a relevant engineering degree. Familiarity with CAD software, hydraulic simulation tools, and industry certifications like those from the International Fluid Power Society (IFPS) are commonly required. Strong problem-solving, attention to detail, and effective communication skills help engineers collaborate with multidisciplinary teams and address complex system requirements. These skills are vital for designing efficient, safe, and reliable fluid power systems used in various industrial applications.

What are some typical challenges faced by fluid power engineers in project development, and how can they be addressed?

Fluid power engineers often encounter challenges such as system leakage, efficiency losses, and component compatibility during project development. Addressing these issues requires thorough system analysis, careful selection of compatible hydraulic or pneumatic components, and rigorous testing during the design phase. Collaborating closely with manufacturers, maintenance teams, and control engineers can help identify and resolve potential problems early, ensuring reliable and cost-effective solutions. Continuous learning about new technologies and industry standards also plays a key role in overcoming these challenges.

What is the difference between Fluid Power Engineering vs Mechanical Engineering?

AspectFluid Power EngineeringMechanical Engineering
CredentialsBachelor's in Mechanical or Fluid Power Engineering, certifications like NFPA or FPEBachelor's in Mechanical Engineering, PE license often preferred
Work EnvironmentManufacturing plants, hydraulic and pneumatic system design labsFactories, design offices, research labs
Industry UsageHydraulic systems, pneumatic controls, fluid power systemsBroader mechanical systems, thermodynamics, structural design

Fluid Power Engineering focuses specifically on hydraulic and pneumatic systems, requiring specialized knowledge in fluid dynamics and control systems. Mechanical Engineering covers a wider range of mechanical systems, including thermodynamics, materials, and structural analysis. While both fields share foundational engineering principles, Fluid Power Engineers specialize in designing and maintaining fluid-based systems used in various industries.

What is fluid power engineering?

Fluid power engineering is a branch of engineering that focuses on the use, design, and maintenance of systems that transmit and control power through fluids under pressure, such as hydraulics (liquids) and pneumatics (gases). Fluid power engineers design components and systems like pumps, valves, actuators, and circuits used in machinery, vehicles, and industrial equipment. These systems are widely used in industries such as manufacturing, construction, and aerospace due to their efficiency and reliability in controlling force and motion. Fluid power engineers also work on improving the efficiency, safety, and environmental impact of these systems.

How do you become a fluid power engineer?

To become a fluid power engineer, you typically need a bachelor's degree in mechanical, electrical, or fluid power engineering. Gaining experience with hydraulic and pneumatic systems, along with proficiency in CAD software and industry standards, is important. Professional certifications, such as those from the International Fluid Power Society, can also enhance career prospects.

What does a fluid power engineer do?

A fluid power engineer designs, develops, and maintains systems that use pressurized fluids, such as hydraulics and pneumatics, to generate power and control machinery. They analyze system performance, select appropriate components, and ensure safety and efficiency, often using tools like CAD software and adhering to industry standards. This role typically requires knowledge of fluid dynamics, mechanical systems, and relevant certifications.
What are popular job titles related to Fluid Power Engineering jobs in Washington? For Fluid Power Engineering jobs in Washington, the most frequently searched job titles are:
What job categories do people searching Fluid Power Engineering jobs in Washington look for? The top searched job categories for Fluid Power Engineering jobs in Washington are:
Infographic showing various Fluid Power Engineering job openings in Washington as of July 2026, with employment types broken down into 90% Full Time, 6% Part Time, and 4% Contract. Highlights an 89% Physical, 3% Hybrid, and 8% Remote job distribution, with an average salary of $166,342 per year, or $80 per hour.

Mechanical Engineering Tutor

Varsity Tutors

College Park, MD • Remote

$18 - $40/hr

Part-time

Re-posted 4 days ago


Varsity Tutors rating

5.7

Company rating: 5.7 out of 10

Based on 16 frontline employees who took The Breakroom Quiz

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Job description

About the Job
The Varsity Tutors Live Learning Platform has thousands of students looking for online Mechanical Engineering tutors nationally. As a tutor on the Varsity Tutors Platform, you'll have the flexibility to set your own schedule, earn competitive rates, and make a real impact on students' academic success and understanding. All from the comfort of your home.
Why Join Our Platform?
  • Earn incrementally higher pay for each session with the same student, reaching up to $40/hour.
  • Get paid up to twice per week, ensuring fast and reliable compensation for the tutoring sessions you conduct and invoice.
  • Set your own hours and tutor as much as you'd like.
  • Tutor remotely using our purpose-built Live Learning Platform. No commuting required.
  • Get matched with students best-suited to your teaching style and expertise.
  • Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson generation, and engagement features, helping you save prep time and focus on impactful teaching.
  • We handle the logistics—you just invoice for your tutoring sessions, and we take care of payments.

What We Look For In a Mechanical Engineering Tutor
  • Advanced Subject Mastery: Deep knowledge of statics, dynamics, mechanics of materials, thermodynamics, fluid mechanics, heat transfer, machine design, manufacturing processes, and control systems. Ability to explain free body diagrams, stress-strain relationships, Bernoulli equation, and heat conduction principles while preparing students for mechanical engineering coursework, the FE examination, and professional practice.
  • Conceptual Teaching & Problem-Solving: Skilled at breaking down free body diagram construction, stress analysis, and thermal system design. Guides students through solving static equilibrium problems, analyzing beam deflection, designing heat exchangers, computing fluid flow parameters, and selecting machine components. Emphasizes systematic engineering problem-solving approaches and connects mechanical engineering to automotive, aerospace, energy systems, and manufacturing applications.
  • Curriculum Awareness & Adaptive Instruction: Familiar with mechanical engineering curricula and common challenges such as three-dimensional equilibrium problems, Mohr circle analysis, and thermodynamic cycle analysis. Adapts instruction using engineering handbooks, computational tools, and design project guidance to support undergraduate mechanical engineering students from introductory mechanics through advanced thermal-fluid systems and machine design courses.
  • Effective Teaching Methods: Ability to identify concepts students commonly struggle with, explain material using multiple approaches, and adapt instruction to meet individual learning needs and styles.
  • Strong communication skills and a friendly, engaging teaching style.
  • Ability to adapt to different learning styles and student needs.

Ways To Connect With Students
  • 1-on-1 Online Tutoring - Provide personalized instruction to individual students.
  • Instant Tutoring - Accept on-demand tutoring requests whenever you're available.

About Varsity Tutors And 1-on-1 Online Tutoring
Our mission is to transform the way people learn by leveraging advanced technology, AI, and the latest in learning science to create personalized learning experiences. Through 1-on-1 Online Tutoring, students receive customized instruction that helps them achieve their learning goals. Our platform is designed to match students with the right tutors, fostering better outcomes and a passion for learning.
Please note: Varsity Tutors does not contract in: Alaska, California, Colorado, Delaware, Hawaii, Maine, New Hampshire, North Dakota, Vermont, West Virginia or Puerto Rico.

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