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Additive Manufacturing Jobs in Arkansas (NOW HIRING)

Deep understanding of industry-specific processes including plastic injection molding, metal fabrication, stamping, grinding, machining, welding, and additive manufacturing. * Advanced proficiency in ...

Deep understanding of industry-specific processes including plastic injection molding, metal fabrication, stamping, grinding, machining, welding, and additive manufacturing. * Advanced proficiency in ...

Deep understanding of industry‑specific processes including plastic injection molding, metal fabrication, stamping, grinding, machining, welding, and additive manufacturing. * Advanced proficiency ...

Deep understanding of industry-specific processes including plastic injection molding, metal fabrication, stamping, grinding, machining, welding, and additive manufacturing. * Advanced proficiency in ...

The manufacturing engineer's responsibilities include identifying areas for improvement, maintaining high levels of manufacturing and product quality, designing new products and methods, as well as ...

The manufacturing engineer's responsibilities include identifying areas for improvement, maintaining high levels of manufacturing and product quality, designing new products and methods, as well as ...

Manufacturing Engineer

Fort Smith, AR · On-site

$78K - $97K/yr

The manufacturing engineer's responsibilities include identifying areas for improvement, maintaining high levels of manufacturing and product quality, designing new products and methods, as well as ...

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Additive Manufacturing information

See Arkansas salary details

$11

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$28

How much do additive manufacturing jobs pay per hour?

As of Sep 9, 2026, the average hourly pay for additive manufacturing in Arkansas is $20.63, according to ZipRecruiter salary data. Most workers in this role earn between $16.68 and $23.85 per hour, depending on experience, location, and employer.

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.

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 are the most commonly searched types of Additive Manufacturing jobs in Arkansas?

The most popular types of Additive Manufacturing jobs in Arkansas are:

What are popular job titles related to Additive Manufacturing jobs in Arkansas?

For Additive Manufacturing jobs in Arkansas, the most frequently searched job titles are:

What job categories do people searching Additive Manufacturing jobs in Arkansas look for?

The top searched job categories for Additive Manufacturing jobs in Arkansas are:

Infographic showing various Additive Manufacturing job openings in Arkansas as of September 2026, with employment types broken down into 1% Internship, 1% As Needed, 89% Full Time, 5% Part Time, 2% Contract, and 2% Nights. Highlights an 94% Physical, 2% Hybrid, and 4% Remote job distribution, with an average salary of $42,908 per year, or $20.6 per hour.

Laboratory Technician

State University, AR • On-site

Arkansas State University
Colleges, Universities, and Professional Schools • 1 - 5K employees

$17.50 - $23.25/hr

Full-time

Posted 10 days ago


Arkansas State University rating

8.6

Company rating: 8.6 out of 10

Based on 6 frontline employees who took The Breakroom Quiz

74th of 633 rated colleges and universities


Job description

Employment Status:
Full time (29-40 Hrs)
Type of Employment:
Staff
# of openings:
1
Location:
ASU-Jonesboro
Proposed Salary Range:
Commensurate with Experience
Closing:
9/15/26
Please note: All postings close at 12 A.M. CST on the closing date. This employer participates in E-Verify.
Position Summary:
The College of Veterinary Medicine is seeking a creative and hands-on technician to join our Clinical Skills team. The ideal candidate is a problem-solver at heart-someone who thrives on designing, building, and refining practical solutions. This role merges technical craftsmanship with educational support, requiring a unique blend of innovation and physical skill. The primary purpose of this position is to promote and support education of veterinary students in the clinical simulation laboratories. This position performs a wide variety of instructional and managerial duties for the Clinical Skills Program.
Duties & Responsibilities:
  • Assist Clinical Skills faculty in the instruction and supervision of veterinary students during laboratory sessions in the pre-clinical curriculum (Years 1-3).
  • Prepare, set up, and conduct clinical skills laboratories, ensuring all materials, models, and specimens are ready for instruction.
  • Demonstrate clinical procedures and techniques to students and provide constructive, skill-based feedback during practice sessions.
  • Support the scheduling and logistical coordination of laboratory training sessions, practical examinations, and related academic activities.
  • Set up and help to administer objective structured clinical skills examinations (OSCEs).
  • Maintain teaching laboratories, equipment, and storage areas to a high standard of organization, cleanliness, and operational readiness.
  • Utilize a variety of teaching tools-including simulation models, anatomic specimens (cadavers), and live animals-to train students in clinical skills across principal veterinary species (e.g., dogs, cats, horses, livestock).
  • Develop, prototype, and fabricate novel teaching models and simulators; maintain and troubleshoot 3-D printing equipment and software.
  • Oversee the inventory, maintenance, repair, and sterilization of simulation models and related teaching assets.
  • Facilitate the procurement, receipt, and organization of laboratory equipment, supplies, and consumables.
  • Cultivate and maintain effective, collaborative working relationships with faculty, staff, students, and external stakeholders in support of the A-State CVM mission.
  • Perform other related duties as assigned.

Knowledge/Skills/Abilities:
Experience in designing, prototyping, or fabricating functional simulation models, trainers, or related physical prototypes.
Hands-on aptitude with a range of fabrication techniques (e.g., 3D printing, molding/casting, basic machining, or electronics).
Ability to safely lift, push, and pull items up to 70 lb (32 kg).
Valid driver's license and ability to operate a vehicle within Arkansas.
Proficiency in Microsoft Office Suite or similar productivity software.
Excellent organizational, communication, and critical-thinking skills.
Capacity to work effectively in a dynamic, collaborative academic environment.
General Days/Hours:
Monday - Friday
8:00 a.m. - 5:00 p.m.
• Starting and ending hours may change seasonally
Regular and reliable attendance
Other:
Please note: all position postings close at 12:00 A.M. CST on the position closing date
Minimum Qualifications:
An earned high school diploma or equivalent.
Some prior experience in an academic, clinical, or veterinary setting regarding additive manufacturing (3D printing/scanning), working with composites/resins, or welding.
Two years experience handling large or small animals
Preferred Qualification:
Demonstrated portfolio or examples of created medical or veterinary simulation models.
Formal training or significant experience in additive manufacturing (3D printing/scanning), working with composites/resins, or welding.
Foundational knowledge of basic accounting or supply inventory management.
E-Verify Participation Notice:
https://www.e-verify.gov/sites/default/files/everify/posters/EVerifyParticipationPoster.pdf
E-Verify Right to Work:
https://www.e-verify.gov/sites/default/files/everify/posters/IER_RightToWorkPoster%20Eng_Es.pdf

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