1

Additive Manufacturing Jobs in Dallas, TX (NOW HIRING)

Familiarity with advanced manufacturing technologies, such as additive manufacturing or automation systems. * Strong project management skills, including experience managing multiple priorities and ...

Sr Mechanical Engineer

Mckinney, TX · On-site

$97K - $128K/yr

... additive manufacturing, vendors) • Ensure designs are manufacturable and support low-rate initial production (LRIP) • Support design for manufacturability (DFM) and design for assembly (DFA) • ...

Mechanical Engineer V/VI

Fort Worth, TX · On-site

$189K - $207K/yr

Engineers in this role will contribute to cutting-edge advancements in UAS technologies, driving innovation in areas such as autonomous systems, additive manufacturing, and aerospace materials. Key ...

Manufacturing Engineer

Fort Worth, TX · On-site

$69K - $90K/yr

Manufacturing Engineer Are you looking for an opportunity that makes a difference and drives improvement? Do you enjoy managing projects to closure in a controlled timeline? Do you like fast paced ...

Manufacturing Engineer

Fort Worth, TX · On-site

$69K - $90K/yr

Manufacturing Engineer Are you looking for an opportunity that makes a difference and drives improvement? Do you enjoy managing projects to closure in a controlled timeline? Do you like fast paced ...

Engineer, Manufacturing

Fort Worth, TX · On-site

$69K - $90K/yr

The Manufacturing Engineer supports the resolution of production issues and provides engineering support to implement new products and processes into production. The Manufacturing Engineer is also ...

Manufacturing Engineer

Grand Prairie, TX · On-site

$69K - $89K/yr

Manufacturing Engineer Direct Hire Grand Prairie, TX - onsite 5x a week Pay: $80,000-100,000 plus performance bonus medical, dental, vision, 401K We are seeking a hands-on Manufacturing Engineer to ...

Showing results 41-60

Additive Manufacturing information

See Dallas, TX salary details

$13

$24

$34

How much do additive manufacturing jobs pay per hour?

As of Aug 10, 2026, the average hourly pay for additive manufacturing in Dallas, TX is $24.68, according to ZipRecruiter salary data. Most workers in this role earn between $19.95 and $28.56 per hour, depending on experience, location, and employer.

What is the difference between Additive Manufacturing vs CNC Machinist?

AspectAdditive ManufacturingCNC Machinist
CredentialsTypically requires technical training or certification in 3D printing technologiesRequires machining certifications or technical training in CNC operations
Work EnvironmentWorks in labs or manufacturing facilities with 3D printers and related equipmentWorks in machine shops or manufacturing plants operating CNC machines
Industry UsageUsed in prototyping, custom parts, and complex geometriesUsed for precision manufacturing of metal and plastic parts
Search & Comparison IntentOften compared for manufacturing processes involving digital fabricationCompared for traditional subtractive manufacturing skills

While both roles are involved in manufacturing, Additive Manufacturing focuses on building parts layer-by-layer using 3D printing technologies, whereas CNC Machinists operate subtractive machines to carve parts from raw materials. Understanding these differences helps in choosing the right career path or job search focus within the manufacturing industry.

Is additive manufacturing a good career?

Additive manufacturing is a growing field that involves designing and operating 3D printing equipment, often requiring skills in CAD software and knowledge of materials. Careers in this area can offer opportunities in industries such as aerospace, healthcare, and automotive, with roles ranging from technician to engineer. Job prospects depend on industry demand, technical skills, and certifications in additive manufacturing technologies.

What is additive manufacturing?

Additive manufacturing (AM) is the process of creating products by adding material using one or more techniques. This is the opposite of subtractive manufacturing, which produces products by removing material. Many products are produced using a combination of these two techniques. To manufacture a plastic shape, you may use additive manufacturing to layer plastic materials then use subtractive manufacturing to cut and shape the plastic. In recent years, AM has started to focus on advanced techniques like 3D printing, where complex products are created layer by layer, using one or more materials. The main job in AM is that of an additive manufacturing engineer, although rapid prototyping may utilize this process to create a small model of a potential product.

What is additive manufacturing?

Additive manufacturing, often referred to as 3D printing, is a process of creating objects by adding material layer by layer, based on a digital model. Unlike traditional manufacturing methods that remove material from a solid block, additive manufacturing builds products directly from raw materials such as plastics, metals, or composites. This technology enables complex designs, rapid prototyping, and customization that would be difficult or impossible with conventional manufacturing processes.

What are the key skills and qualifications needed to thrive in additive manufacturing, and why are they important?

To excel in Additive Manufacturing, a solid understanding of engineering principles, 3D modeling, and materials science is typically required, often supported by a degree in engineering or a related field. Familiarity with CAD software, 3D printers, and quality assurance systems, as well as certifications like SME Additive Manufacturing Certification, is highly beneficial. Strong problem-solving, attention to detail, and effective communication skills help professionals innovate and collaborate in dynamic production environments. These competencies are essential for ensuring precision, efficiency, and the successful implementation of advanced manufacturing technologies.

What are some typical challenges faced in an additive manufacturing role, and how can they be addressed?

Professionals in Additive Manufacturing often encounter challenges such as ensuring part quality, optimizing print parameters, and troubleshooting equipment malfunctions. Working closely with engineering teams and using advanced simulation software can help address issues related to design for additive processes. Regular calibration of machinery and staying updated on the latest material advancements are also key strategies for overcoming common hurdles. Collaboration and ongoing training play a significant role in maintaining production efficiency and quality standards.

How to get into additive manufacturing?

To pursue a career in additive manufacturing, gaining a background in engineering, materials science, or manufacturing technology is essential. Developing skills in 3D modeling, CAD software, and understanding different 3D printing processes, along with relevant certifications, can improve job prospects. Entry-level roles often require hands-on experience with additive manufacturing equipment and knowledge of quality control standards.
What are the most commonly searched types of Additive Manufacturing jobs in Dallas, TX? The most popular types of Additive Manufacturing jobs in Dallas, TX are:
What cities near Dallas, TX are hiring for Additive Manufacturing jobs? Cities near Dallas, TX with the most Additive Manufacturing job openings:
Infographic showing various Additive Manufacturing job openings in Dallas, TX as of August 2026, with employment types broken down into 87% Full Time, 6% Part Time, 1% Temporary, 4% Contract, and 2% Nights. Highlights an 96% Physical, 1% Hybrid, and 3% Remote job distribution, with an average salary of $51,331 per year, or $24.7 per hour.

Staff Engineer, Propulsion - Mechanical Design (R5389) with Security Clearance

Shield AI Inc

Dallas, TX • On-site

Other

Posted 19 days ago


Job description

Shield AI is a venture-backed defense-tech company with the mission of protecting service members and civilians with intelligent systems. Its products include Hivemind autonomy software, V-BAT and X-BAT aircraft, and Aechelon simulation and synthetic reality technologies. With offices and facilities across the U.S., Europe, the Middle East, and Asia-Pacific, Shield AI's technology actively supports operations worldwide. For more information, visit www.shield.ai . Follow Shield AI on LinkedIn , X , Instagram , and YouTube . Job Description: We are looking for a Staff Mechanical Design & Analysis Engineer to join the V-BAT propulsion engineering team. This role is for an engineer who can own mechanical design from concept through production release, while also performing the mechanical analysis required to prove that the design works. You will design propulsion system components and subsystems, analyze them for strength, stiffness, fatigue, vibration, thermal behavior, manufacturability, and reliability, then drive those designs through prototyping, test, release, and production cut-in. This is not a pure analysis role and not a pure CAD role. The right candidate is a hands-on mechanical engineer who can create excellent hardware, justify design decisions with sound engineering analysis, and own the details required to get flight-critical propulsion hardware into production. What you'll do: * Design propulsion system components and subsystems for V-BAT, including: * Fuel and oil delivery hardware * Two-stroke engine components and supporting hardware * Engine thermal-control components * Propeller and ducted-fan-adjacent mechanical hardware * Mounts, brackets, housings, retention features, tubing supports, and related propulsion hardware * Perform mechanical analysis to guide and validate your designs, including: * Static strength and stiffness analysis * Hand calculations and fundamental sizing * Finite element analysis where appropriate * Fatigue and durability assessment * Vibration and modal analysis * Bolted-joint, bearing, shaft, bracket, and mount analysis * Thermal growth, clearance, and tolerance-stack analysis * Basic thermal/structural coupling where needed * Own mechanical design trades between mass, stiffness, strength, cost, manufacturability, serviceability, and reliability. * Create and maintain high-quality CAD models and drawing packages for propulsion components and assemblies. * Route and retain wire harnesses, fuel lines, oil lines, cooling lines, and other propulsion-adjacent tubing or fluid systems. * Own engineering change orders, or ECOs, for your components from problem definition through release. * Support configuration management for the propulsion system, including accurate documentation of released hardware, prototype configurations, and production cut-ins. * Coordinate design releases with manufacturing, quality, supply chain, flight test, program management, and other engineering teams. * Own and execute verification and validation test campaigns for your hardware * Analyze test data from ground and flight testing to determine whether components are meeting structural, thermal, vibration, durability, and reliability requirements. * Work closely with electrical, mechanical, aero-performance, software, manufacturing, and flight-test engineers to ensure your designs integrate cleanly into the full aircraft. * Investigate failures, nonconformances, production escapes, and field issues, then drive corrective actions through design updates, process changes, or test improvements. Required qualifications: * B.S. degree in Mechanical Engineering or Aerospace Engineering. * 5+ years of professional mechanical design experience. * Strong proficiency with 3D CAD modeling and detailed mechanical design. * Experience developing production-ready engineering drawings and documentation. * Understanding of GD&T (Geometric Dimensioning and Tolerancing) and manufacturing processes. * Experience owning components through the full product lifecycle from concept through production. * Experience supporting prototype builds, testing, and design iteration. * Strong cross-functional communication and project coordination skills. * Ability to work effectively in a fast-paced hardware development environment. Preferred qualifications: * Experience in aerospace, aviation, defense, motorsports, or other high-performance mechanical systems. * Proficiency with Siemens NX. * Experience designing engine, propulsion, fuel, lubrication, thermal management, or rotating machinery systems. * Experience with wire harness routing, tubing design, and aircraft integration. * Familiarity with configuration management and engineering change processes. * Experience supporting flight test programs or airborne hardware development. * Knowledge of composites, sheet metal, machined components, castings, and additive manufacturing. * Experience with environmental, durability, vibration, and qualification testing. * Familiarity with FAA, military, or aerospace development practices. #LD Full-time regular employee offer package: Pay within range listed + Bonus + Benefits + Equity Temporary employee offer package: Pay within range listed above + temporary benefits package (applicable after 60 days of employment) Salary compensation is influenced by a wide array of factors including but not limited to skill set, level of experience, licenses and certifications, and specific work location. All offers are contingent on a cleared background and possible reference check. Military fellows and part-time employees are not eligible for benefits. Please speak to your talent acquisition representative for more information. ### Shield AI is proud to be an equal opportunity workplace and is an affirmative action employer. We are committed to equal employment opportunity regardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, marital status, disability, gender identity or Veteran status. If you have a disability or special need that requires accommodation, please let us know.