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Antenna Engineer Jobs in Florida (NOW HIRING)

Description The Defense Systems Group at Leidos has an immediate opening for a Senior RF / Antenna Engineer at our St. Petersburg, FL facility. This position supports the development, integration ...

The Defense Systems Group at Leidos has an immediate opening for a Senior RF / Antenna Engineer at our St. Petersburg, FL facility. This position supports the development, integration, and testing of ...

The Defense Systems Group at Leidos has an immediate opening for a Senior RF / Antenna Engineer at our St. Petersburg, FL facility. This position supports the development, integration, and testing of ...

The Effector RF Design Antenna & Radome team at Raytheon is seeking a talented Engineer to join our team in Tucson, AZ. The candidate will be responsible for contributing to and shaping antenna ...

The Effector RF Design Antenna & Radome team at Raytheon is seeking a talented Engineer to join our team in Tucson, AZ. The candidate will be responsible for contributing to and shaping antenna ...

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Antenna Engineer information

See Florida salary details

$44.1K

$102.6K

$146.8K

How much do antenna engineer jobs pay per year?

As of Sep 5, 2026, the average yearly pay for antenna engineer in Florida is $102,610.00, according to ZipRecruiter salary data. Most workers in this role earn between $75,800.00 and $146,500.00 per year, depending on experience, location, and employer.

What is an antenna engineer?

An antenna engineer designs and develops antennas and other communication devices. The duties of someone in this career include working with electronic equipment such as modems, cell phones, satellite equipment, and radio antennas. As an engineer, you may analyze a company’s needs and then make plans to meet those needs. Your responsibilities may include performing research, making a development schedule, and creating budget proposals for development projects. You often create prototypes of your designs for testing and then analyze performance. Many projects require an understanding of radio frequency (RF) ranges.

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

To thrive as an Antenna Engineer, you need a solid background in electromagnetics, RF engineering, and antenna theory, typically supported by a degree in electrical engineering or a related field. Familiarity with simulation tools like HFSS or CST, vector network analyzers, and relevant certifications such as the IEEE Wireless Communication certification is highly valuable. Strong problem-solving abilities, attention to detail, and effective teamwork are essential soft skills for this role. These competencies are crucial for designing, testing, and optimizing antennas that meet performance requirements in complex wireless systems.

How does an antenna engineer typically collaborate with other teams during the development of a new wireless product?

Antenna Engineers frequently work alongside RF engineers, mechanical designers, and product managers to ensure that antenna designs are optimized for both performance and manufacturability. During product development, they participate in cross-functional meetings to discuss integration challenges, share test results, and address design trade-offs. Close collaboration with the testing and quality assurance teams is also essential to validate the antenna's real-world performance. This teamwork helps ensure the final product meets regulatory requirements and customer expectations.

What is the difference between Antenna Engineer vs RF Engineer?

AspectAntenna EngineerRF Engineer
CredentialsBachelor's or higher in Electrical Engineering, specialized in antennasBachelor's or higher in Electrical Engineering, RF or Communications focus
Work EnvironmentDesigning, testing, and optimizing antennas in labs or fieldDesigning and testing RF circuits and systems in labs or production
Industry UsageTelecommunications, aerospace, defense, wireless devicesWireless communications, radar, satellite, mobile networks

Both Antenna Engineers and RF Engineers work in wireless and telecommunications industries, often overlapping in skills related to radio frequency systems. However, Antenna Engineers focus specifically on antenna design and performance, while RF Engineers handle broader RF circuit and system design. Understanding these distinctions helps in choosing the right career path or job search focus.

What are the most commonly searched types of Antenna Engineer jobs in Florida?

The most popular types of Antenna Engineer jobs in Florida are:

What cities in Florida are hiring for Antenna Engineer jobs?

Cities in Florida with the most Antenna Engineer job openings:

What are popular job titles related to Antenna Engineer jobs in FL?

For Antenna Engineer jobs in FL, the most frequently searched job titles are:

Infographic showing various Antenna Engineer job openings in Florida as of August 2026, with employment types broken down into 100% Full Time. Highlights an 73% In-person, 18% Hybrid, and 9% Remote job distribution, with an average salary of $102,610 per year, or $49.3 per hour.

Senior RF/Antenna Engineer

NCSL International

Saint Petersburg, FL • On-site

$120 - $170/hr

Other

Re-posted 18 hours ago


Job description

The Defense Systems Group at Leidos has an immediate opening for a Senior RF / Antenna Engineer at our St. Petersburg, FL facility. This position supports the development, integration, and testing of advanced RF and phased array antenna systems for mission‑critical defense applications.

In this role, you will contribute to the architecture, design, analysis, and integration of complex RF antenna systems supporting Department of Defense and national security customers. You will collaborate with multidisciplinary engineering teams and interface with systems engineering, program leadership, and customers to deliver innovative solutions for challenging operational environments.

The St. Petersburg facility specializes in the design, modeling and simulation, prototyping, integration, and testing of advanced electronic systems, with a focus on embedded communications systems, Software Defined Radios (SDR), phased array antenna systems, and secure RF architectures operating in contested and denied environments.

Key Responsibilities
  • Design, analyze, and optimize RF and antenna subsystems.
  • Perform electromagnetic simulations and validate performance through laboratory and field testing.
  • Support system architecture development and RF link analysis.
  • Develop antenna concepts and perform trade studies for performance, size, weight, and power constraints.
  • Conduct RF measurements, debugging, and performance characterization.
  • Support integration of RF hardware into larger system architectures.
  • Prepare technical documentation, test reports, and engineering presentations.
  • Collaborate with systems, mechanical, digital, and software engineering teams.
  • Participate in design reviews and technical assessments.
  • Support proposal efforts and customer technical discussions as needed.
Clearance Qualifications
  • U.S. Citizenship required.
  • Ability to obtain and maintain a Secret Security Clearance.
  • Willingness to work in classified laboratory environments and support secure development, integration, and test activities.
  • Ability to comply with all program‑specific security requirements, including handling of classified materials and controlled technical data (ITAR/EAR).
Basic Qualifications
  • Bachelor’s degree in Electrical Engineering, Electromagnetics, Physics, or related technical discipline with 4-8 years of relevant experience; OR
  • Master’s degree in Electrical Engineering, Electromagnetics, Physics, or related technical discipline with 2-6 years of relevant experience.
  • Strong understanding of RF and microwave engineering fundamentals.
  • Experience with antenna design, analysis, and testing.
  • Familiarity with electromagnetic simulation and modeling tools such as HFSS, CST, FEKO, ADS, or similar.
  • Experience with RF test equipment including VNAs, spectrum analyzers, signal generators, power meters, and oscilloscopes.
  • Knowledge of RF propagation, impedance matching, link budgets, and system‑level RF performance.
  • Ability to analyze technical data and troubleshoot RF system issues.
  • Strong written and verbal communication skills.
  • Ability to work effectively in a collaborative engineering environment.
  • U.S. citizenship required.
Preferred Qualifications
  • Experience supporting DoD, aerospace, defense, or government programs.
  • Experience supporting phased array or advanced antenna system development efforts.
  • Familiarity with planar or conformal array architectures and beamforming concepts.
  • Familiarity with antenna measurement techniques including near‑field and far‑field testing.
  • Proficiency with electromagnetic simulation and modeling tools such as HFSS, FEKO, CST, or equivalent, and familiarity with MATLAB or similar analysis tools.
  • Experience with phased arrays, beamforming, EW systems, radar systems, SATCOM, or tactical communications.
  • Familiarity with mutual coupling effects, scan performance, sidelobe control, and array calibration principles.
  • Experience designing wideband, multi‑band, or conformal antennas.
  • Knowledge of EMI/EMC principles and testing.
  • Experience with MATLAB, Python, or other scripting/analysis tools.
  • Familiarity with RF PCB design and microwave components.
  • Active Secret or Top Secret clearance preferred.
Commitment to Non-Discrimination

All qualified applicants will receive consideration for employment without regard to sex, race, ethnicity, age, national origin, citizenship, religion, physical or mental disability, medical condition, genetic information, pregnancy, family structure, marital status, ancestry, domestic partner status, sexual orientation, gender identity or expression, veteran or military status, or any other basis prohibited by law. Leidos will also consider for employment qualified applicants with criminal histories consistent with relevant laws.

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