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Operating Engineer Union Jobs in Edmond, OK (NOW HIRING)

Industrial Engineer

El Reno, OK ยท On-site

$60K - $81K/yr

Design and implement ergonomic workstations and assembly lines to improve operator safety ... Collaboration - effective across plants, union environments, and functional teams. Operational ...

Industrial Engineer

El Reno, OK ยท On-site

$60K - $81K/yr

Design and implement ergonomic workstations and assembly lines to improve operator safety ... Collaboration - effective across plants, union environments, and functional teams. Operational ...

Environment, Health and Safety Manager

El Reno, OK ยท On-site

$94K - $117K/yr

... Industrial Engineer at our manufacturing facility located in El Reno, Oklahoma. Key ... Design and implement ergonomic workstations and assembly lines to improve operator safety ...

... Engineering Directorate for all operations related to corrective and preventive maintenance ... Ensures the customer's facilities are operated and maintained cost effectively, efficiently, and ...

Program Manager

Oklahoma City, OK ยท On-site

$160K - $200K/yr

... Engineering Directorate for all operations related to corrective and preventive maintenance ... Ensures the customer's facilities are operated and maintained cost effectively, efficiently, and ...

Operating Engineer Union information

See Edmond, OK salary details

$50.8K

$74.2K

$99.9K

How much do operating engineer union jobs pay per year?

As of Jul 23, 2026, the average yearly pay for operating engineer union in Edmond, OK is $74,246.00, according to ZipRecruiter salary data. Most workers in this role earn between $56,700.00 and $90,100.00 per year, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as an Operating Engineer (Union), and why are they important?

To thrive as an Operating Engineer (Union), you need strong mechanical aptitude, a solid understanding of heavy equipment operation, and typically a high school diploma or equivalent, along with union apprenticeship completion. Familiarity with equipment such as cranes, bulldozers, forklifts, and safety systems, as well as relevant certifications like OSHA or NCCCO, is often required. Outstanding problem-solving skills, attention to detail, and effective teamwork set exceptional professionals apart in this role. These skills and qualifications are crucial for ensuring safe, precise, and efficient operation of machinery on construction sites.

What is the difference between Operating Engineer Union vs Heavy Equipment Operator?

AspectOperating Engineer UnionHeavy Equipment Operator
Credentials/CertificationsUnion membership, OSHA certifications, specialized trainingOSHA certifications, equipment-specific training
Work EnvironmentConstruction sites, power plants, industrial facilitiesConstruction sites, mining, infrastructure projects
Employer/Industry UsageUnionized construction and industrial companiesPrivate contractors, construction firms

The Operating Engineer Union and Heavy Equipment Operator roles often overlap, with both requiring OSHA certifications and equipment training. Operating Engineers typically work in unionized environments on large-scale projects, handling complex machinery and systems. Heavy Equipment Operators focus on operating specific machinery like bulldozers or cranes, often in similar settings. While their skills are related, Operating Engineers usually have broader responsibilities and union benefits.

What are Operating Engineer Union jobs?

Operating Engineer Union jobs refer to positions held by skilled workers who operate and maintain heavy equipment, such as cranes, bulldozers, excavators, and other machinery used in construction and industrial projects. These professionals are typically members of a union, such as the International Union of Operating Engineers (IUOE), which provides training, job placement, and collective bargaining for better wages and benefits. Union operating engineers often work on major construction sites, road projects, and infrastructure developments, ensuring equipment is run safely and efficiently. Membership in the union may require completing an apprenticeship program and meeting certain qualifications.

What are some common challenges Operating Engineer Union members face on the job site, and how can they prepare to handle them?

Operating Engineer Union members often work with heavy machinery in dynamic environments, which can present challenges such as adapting to rapidly changing site conditions, maintaining strict safety standards, and troubleshooting equipment malfunctions. Staying updated with ongoing safety training and being proactive about preventative maintenance are key to minimizing risks. Additionally, strong communication skills help coordinate activities with other trades and supervisors, ensuring smooth workflow and reducing potential hazards. Union resources and peer support also play a vital role in overcoming these workplace challenges.
What cities near Edmond, OK are hiring for Operating Engineer Union jobs? Cities near Edmond, OK with the most Operating Engineer Union job openings:
Infographic showing various Operating Engineer Union job openings in Edmond, OK as of July 2026, with employment types broken down into 92% Full Time, 4% Part Time, and 4% Contract. Highlights an 85% Physical, 5% Hybrid, and 10% Remote job distribution, with an average salary of $74,246 per year, or $35.7 per hour.
Network Software Engineer (Security & Protocols) with Security Clearance

Network Software Engineer (Security & Protocols) with Security Clearance

Encode

Oklahoma City, OK โ€ข On-site

Contractor

Posted 18 days ago


Job description

Designs, develops, architects, and maintains software solutions for network stack protocol software used to securely exchange data between systems. Partners with stakeholders to identify and review product security requirements. Conducts performance analysis, testing, monitoring and software assessments of networking protocol software to assess, identify and address risks, weaknesses and vulnerabilities. Provides input on secure network and protocols throughout the end-to-end lifecycle development of software products. Researches and implements current and emerging networking protocols, software security trends, vulnerabilities, and technologies. Performs software project management activities and software supplier management functions. The selected candidate will work with the Ground Systems product team focused on the concept, requirements, architecture, design and development of an advanced ground operating system. The Operating System definition we use is broad. Besides covering multiple operating systems (Windows, Linux, Cisco IOS, CDOT, WindRiver VXWorks, ESXi, etc) it consists of the provided infrastructure necessary to provide all services of the system. We specialize in air gapped, full featured, and totally self contained systems, but have also developed WAN connected systems Position Responsibilities:
โ€ขAssists with the design, development, architecture, and maintenance of software solutions for network stack protocol software used to securely exchange data between systems.
โ€ข Participates in performance analysis, testing, monitoring and software assessments of networking protocol software to assess, identify and address risks, weaknesses and vulnerabilities.
โ€ข Gathers information to provide input on secure network and protocols throughout the end-to-end lifecycle development of software products.
โ€ข Gathers information to support software project management activities and software supplier management functions. Basic Qualifications (Required Skills/Experience):
โ€ข Bachelorโ€™s Degree in an engineering discipline experience and 5 years related relevant work experience
โ€ข Experience in Linux deployment and administration including bash scripting, remote access, and deployment
โ€ข Experience in Basic networking, storage administration, and package management
โ€ข Experience in Basic virtualization principles
โ€ข Experience in Containerization, and Kubernetes familiarity Preferred Qualifications (Desired Skills/Experience):
โ€ข Bachelor of Science degree from an accredited course of study in engineering, engineering technology (includes manufacturing engineering technology), chemistry, physics, mathematics, data science, or computer science
โ€ข Knowledge of communications and network concepts and principles. Knowledge of antenna and aperture characteristics for application to communications and network system designs. Knowledge of communications and network system design from architecture development to component design. Knowledge of associated technology and methods. Knowledge of secure communications. Knowledge of methods to ensure communication system survivability. Knowledge of communications and network system power system requirements. Knowledge of radio frequency compatibility. Knowledge of multi-discipline integrating issues applicable to communications and network systems, including primary characteristics such as physical and functional interfaces, communications reliability, link availability, and environmental constraints. Additional characteristics include: human factors, maintainability, testability, supportability, mechanical design, packaging, electrical, and software.
โ€ข Knowledge of and the ability to apply communications and network systems regulatory requirements (e.g., Federal Aviation Agency [FAA] regulations, Military Specifications, National Telecommunications and Information Administration (NTIA), Federal Communications Commission [FCC] regulations) and standards (e.g., safety, military, emissions, Institute of Electrical and Electronics Engineering [IEEE], ARINC, Engineering International Association [EIA], International Civil Air Organization [ICAO], International Standards Organization, International Telecommunications Union [ITU], American National Standards Institute [ANSI], Society of Automotive Engineers [SAE]). โ€ข Ability to identify susceptibility, survivability, and vulnerability (S/V) of the systems, subsystems and delivery mechanisms, based on the knowledge of characteristics and capabilities of threats (e.g. protocol exploits, identity spoofing, malware injection techniques, application layer vulnerabilities).
โ€ข Knowledge of software programming languages and databases and the ability to apply to the software domain. Programming languages encompass higher order languages, auto-coded languages and assembly languages.
โ€ข Knowledge of the practical application of network technologies. Ability to solve difficult network problems like Quality of Service, multi-level security, network protocol conversion, network management problems and application optimization.
โ€ข Ability to innovate in the area of new network systems modeling, simulation, and emulation. Knowledge of programming languages used in modeling, simulation and emulation. Knowledge of software development and testing tools (e.g. desktop simulation tools, configuration management tools, requirements management tools). Knowledge of computer hardware design and operating systems as it relates to modeling, simulation and emulation.
โ€ข Knowledge of programming languages used for networking problems. Knowledge of computing equipment and multiple operating systems. Knowledge of communications, networking protocols. Knowledge of software development and testing tools capability and usage. Ability to integrate hardware and software components into a functional system.
โ€ข Knowledge of domains, characteristics, constraints and products that require real-time software and influence architecture, requirements, interfaces, designs, and integration/test approaches. Real-time domain examples include control systems, human interfaces and signal processing. Examples of characteristics and constraints that impact real-time software include hardware/software timing, sizing, bandwidth, optimization and synchronization. Examples of products include aircraft, missiles, airborne/shipboard/space systems/ground-based operational systems and real-time support systems such as simulators and training systems.
โ€ข Knowledge of how to derive and allocate requirements (e.g., system, sub-system, software) and show traceability throughout the product lifecycle.
โ€ข Knowledge of software architecture and design methodologies. Ability to synthesize software architectures and designs that meet requirements, characteristics and constraints.