As of August 01, 2026, the average hourly rate for an Electronics Engineer I in the United States is $39, which translates to an annual salary of about $82,086.
However, the hourly wage can vary significantly based on several factors. Here’s a detailed look at the typical pay range per hour:
Electronics Engineer I Salaries by Percentile
| Annual Salary |
Monthly Pay |
Weekly Pay |
Hourly Wage |
|
|---|---|---|---|---|
| 75th Percentile | $89,708 | $7,476 | $1,725 | $43 |
| Average | $82,086 | $6,841 | $1,579 | $39 |
| 25th Percentile | $74,439 | $6,203 | $1,432 | $36 |
An Electronics Engineer I's salary isn't a fixed number. It's shaped by several important factors. Below, we'll explore how your years of experience, geographic location, education and company size can directly affect your earning potential.
Experience is a primary driver of an Electronics Engineer I's salary. As you build your skills and take on more complex tasks, your compensation generally increases. Here's how the average salary grows at different career stages:
| Job Role | Years of Experience | Average Salary |
|---|---|---|
| Electronics Engineer I | 0-2 years | $82,086 |
| Electronics Engineer II | 2-4 years | $99,500 |
| Electronics Engineer III | 4-7 years | $120,758 |
| Electronics Engineer IV | 7+ years | $143,786 |
| Electronics Engineer V | 7-10 years | $169,238 |
Demanded Skills for the Role:
| Skills | Demand Percentage |
|---|---|
| Troubleshooting | 14.14% |
| Calibration | 4.48% |
| Electrical Engineering | 1.99% |
Mastering certain specialized skills can lead to a significant increase in pay. Here are examples of skills and the potential impact they can have on an Electronics Engineer I's salary.
| Skill | Salary | Salary % Increase |
|---|---|---|
| Flexibility | $98,503 | |
| Verbal Communication | $97,682 | |
| Electronic Components | $96,861 |
Electronics Engineer I salary potential scales significantly with company size. Data shows that Enterprise companies (5,000+ employees) pay the highest average salary at around $91,891. While startup companies pay approximate $77,737.
| Company Size | Employees | Average Salary |
|---|---|---|
| Startup | 1~50 | $77,737 |
| Growth Stage | 51~500 | $82,216 |
| Established | 501~5000 | $88,737 |
| Enterprise | 5000+ | $91,891 |
Your level of education can impact your salary potential. While many Electronics Engineer I enter the field with a Bachelor's Degree, higher education can lead to more specialized and higher-paying roles.
According to our 100% employer-reported salary data, the median salary for an Electronics Engineer I with a Bachelor's Degree is between $80,151 and $84,636.
| Typical Education for Electronics Engineer I | |
|---|---|
| Degree Level | % of user with this level of education |
| No Diploma | 1.4% |
| High School | 3.6% |
| Associates | 7.9% |
| Bachelors | 63.6% |
| Masters | 20.7% |
| Doctorate | 2.9% |
Understanding how an Electronics Engineer I's annual salary breaks down can help with budgeting. Below, you can see the average hourly rate, weekly pay, and monthly pay for this role. Use the buttons to switch between different pay periods.
| Annual Salary | Monthly Pay | Weekly Pay | Hourly Wage | |
|---|---|---|---|---|
| 75th Percentile | $89,708 | $7,476 | $1,725 | $43 |
| Average | $82,086 | $6,841 | $1,579 | $39 |
| 25th Percentile | $74,439 | $6,203 | $1,432 | $36 |
Salaries for an Electronics Engineer I can change over time, reflecting shifts in market demand and the overall economy. The median salary decreased from $91,966 in 2023 to around $89,144 in 2025, reflecting changes in demand, location, experience, and the wider economy. For a detailed analysis of Electronics Engineer I salary trends, .
| Year | Average Annual Salary |
|---|---|
| 2022 | View More |
| 2023 | $91,966 |
| 2024 | $90,794 |
| 2025 | $89,144 |
| 2026 |
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|
| 2027 |
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|
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Designs, develops, and tests electronic systems, components, or circuits for use within products, equipment, and machinery. Performs circuit design, signal processing, and hardware integration for devices such as sensors, control systems, and communication equipment. Analyzes project requirements and applies engineering principles to develop solutions that enhance reliability and efficiency. Ensures adherence to product specifications and performance requirements. Collaborates with cross-functional teams to troubleshoot issues, optimize performance, and support product lifecycle improvements. May use computer-assisted engineering and design software and equipment to perform assignments. Requires a bachelor's degree in engineering. Typically reports to a manager. Work is closely managed. Works on projects/matters of limited complexity in a support role. Typically requires 0-2 years of related experience.
Specify the abilities and skills that a person needs in order to carry out the specified job duties. Each competency has five to ten behavioral assertions that can be observed, each with a corresponding performance level (from one to five) that is required for a particular job.
Troubleshooting: Troubleshooting is a form of problem solving, often applied to repair failed products or processes on a machine or a system. It is a logical, systematic search for the source of a problem in order to solve it, and make the product or process operational again. Troubleshooting is needed to identify the symptoms. Determining the most likely cause is a process of elimination—eliminating potential causes of a problem. Finally, troubleshooting requires confirmation that the solution restores the product or process to its working state. In general, troubleshooting is the identification or diagnosis of "trouble" in the management flow of a system caused by a failure of some kind. The problem is initially described as symptoms of malfunction, and troubleshooting is the process of determining and remedying the causes of these symptoms. A system can be described in terms of its expected, desired or intended behavior (usually, for artificial systems, its purpose). Events or inputs to the system are expected to generate specific results or outputs. (For example, selecting the "print" option from various computer applications is intended to result in a hardcopy emerging from some specific device). Any unexpected or undesirable behavior is a symptom. Troubleshooting is the process of isolating the specific cause or causes of the symptom. Frequently the symptom is a failure of the product or process to produce any results. (Nothing was printed, for example). Corrective action can then be taken to prevent further failures of a similar kind.
Calibration: In measurement technology and metrology, calibration is the comparison of measurement values delivered by a device under test with those of a calibration standard of known accuracy. Such a standard could be another measurement device of known accuracy, a device generating the quantity to be measured such as a voltage, a sound tone, or a physical artefact, such as a metre ruler. The outcome of the comparison can result in one of the following: no significant error being noted on the device under test a significant error being noted but no adjustment made an adjustment made to correct the error to an acceptable levelStrictly speaking, the term "calibration" means just the act of comparison, and does not include any subsequent adjustment. The calibration standard is normally traceable to a national standard held by a national metrological body.
Electrical Engineering: Electrical engineering is a technical discipline concerned with the study, design and application of equipment, devices and systems which use electricity, electronics, and electromagnetism. It emerged as an identified activity in the latter half of the 19th century after commercialization of the electric telegraph, the telephone, and electrical power generation, distribution and use. Electrical engineering is now divided into a wide range of fields including, computer engineering, power engineering, telecommunications, radio-frequency engineering, signal processing, instrumentation, and electronics. Many of these disciplines overlap with other engineering branches, spanning a huge number of specializations including hardware engineering, power electronics, electromagnetics and waves, microwave engineering, nanotechnology, electrochemistry, renewable energies, mechatronics, and electrical materials science. See glossary of electrical and electronics engineering.
Salary.com salary estimates, histograms, trends, and comparisons are derived from both employer job postings and third-party data sources. We also provide multiple percentiles of salary information for your reference, click here to know Why the Salary Midpoint Formula Is Crucial to Getting Pay Equity Right. With more online, real-time compensation data than any other website, Salary.com helps you determine your exact pay target.
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