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Acoustic Engineering Jobs in Colorado (NOW HIRING)

Project Engineer - AI&T

Arvada, CO ยท On-site

$110K - $135K/yr

... AI&T, systems engineering, or technical project/program management. * Experience in planning and managing full environmental test campaigns (vibe, static load, TVAC, acoustics, EMI/EMC)

... AI&T, systems engineering, or technical project/program management. * Experience in planning and managing full environmental test campaigns (vibe, static load, TVAC, acoustics, EMI/EMC)

... AI&T, systems engineering, or technical project/program management. * Experience in planning and managing full environmental test campaigns (vibe, static load, TVAC, acoustics, EMI/EMC)

... AI&T, systems engineering, or technical project/program management. * Experience in planning and managing full environmental test campaigns (vibe, static load, TVAC, acoustics, EMI/EMC)

Lead electrical engineering design from schematic through construction documents on commercial ... Familiarity with AV/broadcast, acoustics, or technology systems coordination * LEED AP or ...

Showing results 21-40

Acoustic Engineering information

See Colorado salary details

$39.4K

$113.5K

$150.4K

How much do acoustic engineering jobs pay per year?

As of Aug 7, 2026, the average yearly pay for acoustic engineering in Colorado is $113,461.00, according to ZipRecruiter salary data. Most workers in this role earn between $98,800.00 and $123,600.00 per year, depending on experience, location, and employer.

What does an acoustic engineer do?

An acoustic engineer designs, analyzes, and tests sound and vibration systems to control noise and improve audio quality. They work in environments such as recording studios, manufacturing plants, or building design, often using tools like sound level meters and simulation software. Their work may involve ensuring compliance with noise regulations and optimizing acoustic performance for clients or projects.

What are some common challenges faced by acoustic engineers when working on large-scale projects?

Acoustic engineers often encounter challenges such as balancing sound quality with architectural or structural constraints, managing noise control in complex environments, and coordinating with multidisciplinary teams. Large-scale projects may require creative solutions to meet client expectations while adhering to regulations and budget limitations. Effective communication with architects, contractors, and clients is essential to ensure that acoustic considerations are integrated throughout the project lifecycle.

What is acoustic engineering?

Acoustic engineering is a branch of engineering focused on the study and control of sound and vibration. Acoustic engineers design, analyze, and improve systems related to noise control, sound quality, and audio technology in various environments, such as buildings, vehicles, and concert halls. Their work helps ensure optimal sound experiences, reduce unwanted noise, and solve problems related to vibrations. They often collaborate with architects, product designers, and environmental specialists to implement effective acoustic solutions.

What is a job suitable for an acoustic engineer?

A suitable job for an acoustic engineer includes designing and testing sound systems, noise control solutions, and acoustic environments in industries such as entertainment, construction, automotive, and aerospace. They often work in laboratories, manufacturing facilities, or consulting firms, utilizing tools like sound measurement equipment and simulation software, and may require relevant certifications or a degree in acoustics or engineering.

What is the difference between Acoustic Engineering vs Audio Engineering?

AspectAcoustic EngineeringAudio Engineering
Required CredentialsBachelor's or master's in acoustics, engineering, or physicsBachelor's in audio engineering, music production, or related fields
Work EnvironmentConstruction sites, laboratories, architectural firmsRecording studios, live venues, broadcasting stations
Industry UsageBuilding design, noise control, sound system installationMusic production, live sound, broadcasting

Acoustic Engineering focuses on designing and controlling sound within environments, often involving construction and technical applications. Audio Engineering centers on recording, mixing, and producing sound for entertainment and media. While both roles involve sound, their work settings, skills, and goals differ significantly.

Are acoustic engineers in demand?

Acoustic engineering is a specialized field with steady demand in industries such as construction, manufacturing, entertainment, and environmental consulting. Employment opportunities often require knowledge of sound measurement tools and relevant certifications, and job growth is expected to align with infrastructure and technology development trends.

What are the key skills and qualifications needed to thrive as an acoustic engineer, and why are they important?

To thrive as an Acoustic Engineer, you need a solid background in physics, mathematics, and engineering principles, usually supported by a degree in acoustical engineering or a related field. Familiarity with specialized simulation software (such as EASE or MATLAB), measurement tools, and acoustic modeling systems is typically required. Strong analytical thinking, problem-solving, and effective communication skills help you collaborate with multidisciplinary teams and explain complex concepts to clients. These skills ensure accurate analysis, innovative solutions, and successful project outcomes in various environments where sound quality and control are critical.
What job categories do people searching Acoustic Engineering jobs in Colorado look for? The top searched job categories for Acoustic Engineering jobs in Colorado are:
What cities in Colorado are hiring for Acoustic Engineering jobs? Cities in Colorado with the most Acoustic Engineering job openings:
Infographic showing various Acoustic Engineering job openings in Colorado as of August 2026, with employment types broken down into 90% Full Time, and 10% Part Time. Highlights an 100% In-person job distribution, with an average salary of $113,461 per year, or $54.5 per hour.

Senior Propulsion Engineer, Design (Combustion Devices)

True Anomaly

Denver, CO โ€ข On-site

Full-time

Medical, Dental, Vision, Retirement, PTO

Re-posted 10 days ago


Job description

Space is a warfighting domain. True Anomaly seeks those with the talent and ambition to build the technology that secures it.
OUR MISSION
True Anomaly delivers decisive capabilities for space superiority. We build autonomous spacecraft, advanced payloads, mission software, and space-based interceptors - enabling the U.S. and its Allies to secure the space environment and counter threats from the ultimate high ground.
OUR VALUES
  • Be the offset. We create asymmetric advantages with creativity and ingenuity.
  • What would it take? We challenge assumptions to deliver ambitious results.
  • It's the people. Our team is our competitive advantage and we are better together.

YOUR MISSION
As a Senior Combustion Devices Design Engineer at True Anomaly, you will own the full lifecycle of combustion device development - from architecture trades through flight delivery. You will serve as the team's subject matter expert on injectors, regeneratively cooled thrust chambers, acoustic stability, and high-temperature materials, bringing hands-on mastery of design tools and modern manufacturing methods including additive manufacturing. This is your opportunity to design and develop the next generation of in-space propulsion systems and directly shape the future of on-orbit capabilities.
RESPONSIBILITIES
  • Lead combustion device design: Own the design, analysis, and optimization of combustion chambers, injectors, regen cooling circuits, nozzles, and flow systems for advanced satellite and space vehicle thrusters - from concept through flight qualification.
  • Apply regenerative cooling expertise: Develop and validate regenerative cooling designs for thrust chambers, supporting and/or performing thermal and structural analysis to ensure margin and reliability across the full operating envelope.
  • Drive combustion performance and stability: Use CEA and other combustion analysis tools to predict performance and guide design decisions. Apply knowledge of combustion instability mechanisms to design and validate acoustic cavities and other passive suppression features.
  • Leverage additive manufacturing: Champion the use of AM processes - including designs in Inconel and other high-temperature superalloys - to accelerate development cycles, reduce part count, and enable geometries not achievable through conventional manufacturing.
  • Collaborate with suppliers and partners: Work closely with engine and thruster suppliers to interpret hot-fire and cold-flow test data and translate findings into future design improvements.
  • Lead robust trade studies: Define thruster and engine architecture, select components, and support build campaigns from initial design through integration and test.
  • Build team capability: Mentor junior engineers, develop best practices, analysis tools, checklists, and design release templates that scale with the team.
  • Review and release hardware: Review CAD models and engineering drawings to GD&T standards, providing direct technical feedback and design guidance.
  • Contribute to continuous improvement: Drive initiatives that enhance design efficiency, manufacturability, and system-level performance.

QUALIFICATIONS
  • Bachelor's degree in Mechanical or Aerospace Engineering.
  • 8+ years of professional experience in liquid rocket engine or thruster development.
  • Hands-on combustion device design: Demonstrated experience designing injectors, combustion chambers, regen nozzles, valves, and nozzle extensions.
  • Regenerative cooling design: Practical experience sizing and validating regen cooling circuits for thrust chambers, including thermal margin and pressure drop analysis.
  • CEA proficiency: Demonstrated experience running NASA CEA (or equivalent) to predict propellant performance, O/F sensitivity, and nozzle expansion trade studies.
  • Combustion instability expertise: Familiarity with acoustic combustion instability modes and experience designing acoustic cavities or other suppression features.
  • High-temperature alloys: Experience designing and specifying hardware in Inconel, Haynes, or other high-temperature superalloys for propulsion applications.
  • Additive manufacturing: Experience leveraging AM (SLM, DMLS, or equivalent) in the design and development of propulsion hardware.
  • CAD proficiency with engineering drawing generation to GD&T standards.
  • Operational experience in aerospace build, integration, and test environments.
  • Demonstrated ability to lead multidisciplinary engineering teams in a fast-paced environment.
  • Excellent written and verbal communication skills.
  • U.S. Citizen, eligible for DoD Secret or TS/SCI clearance.

PREFERRED SKILLS AND EXPERIENCE
  • Master's degree in Mechanical or Aerospace Engineering (advanced degrees count toward years of experience).
  • Experience designing, building, testing, and qualifying thruster or engine components through hot-fire, cold-flow, and leak/checkout campaigns.
  • Direct team leadership and mentorship of junior propulsion engineers.
  • Familiarity with the full vehicle lifecycle from concept through production.
  • Track record of innovative problem-solving in complex mechanical and thermodynamic design challenges.
  • Experience in a startup or similarly resource-constrained, high-tempo environment.

COMPENSATION
  • Base Salary: $130,000 to $210,000
  • Equity + Benefits including Health, Dental, Vision, HRA/HSA options, PTO and paid holidays, 401K, Parental Leave

Your actual level and base salary will be determined on a case-by-case basis and may vary based on the following considerations: job-related knowledge and skills, education, location, and experience.
ADDITIONAL REQUIREMENTS
  • Work Location-Successful candidates will be located near Denver or Long Beach. While we observe a hybrid work environment, some work must be done on site.
  • Work environment-the work environment; temperature, noise level, inside or outside, or other factors that will affect the person's working conditions while performing the job.
  • Physical demands-the physical demands of the job, including bending, sitting, lifting and driving.

This position will be open until it is successfully filled. To submit your application, please follow the directions below.
#LI-Onsite
To conform to U.S. Government space technology export regulations, including the International Traffic in Arms Regulations (ITAR) you must be a U.S. citizen, lawful permanent resident of the U.S., protected individual as defined by 8 U.S.C. 1324b(a)(3), or eligible to obtain the required authorizations from the U.S. Department of State.
True Anomaly is committed to equal employment opportunity on any basis protected by applicable state and federal laws. If you have a disability or additional need that requires accommodation, please do not hesitate to let us.