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Research Additive Laser Jobs (NOW HIRING)

$80 - $100/hr

For the Materials Development division - Research & Development, laser welding, laser cladding, additive manufacturing and 3D generation - we are looking for an Employee at the Laser Competence ...

... of efforts from R&D, to prototype development, to supporting design and build tasks for ... Laser Powder Bed Fusion (LPBF), Cold Spray Additive Manufacturing, Directed Energy Deposition (DED ...

... of efforts from R&D, to prototype development, to supporting design and build tasks for ... Laser Powder Bed Fusion (LPBF), Cold Spray Additive Manufacturing, Directed Energy Deposition (DED ...

Manufacturing Engineer, Additive

San Francisco, CA · On-site

$86K - $110K/yr

Own additive metal by developing Astranis's Laser Bed Powder Fusion process from the ground up ... R&D and production. * Assist in designing and creating fixturing for production. * Work with ...

The Applied Research and Characterization team combines expertise in mechanical engineering, human ... CNC router, laser cutters, and bench tools * Experience working with a variety of materials ...

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Research Additive Laser information

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$81.5K

$100.1K

$128K

How much do research additive laser jobs pay per year?

As of Sep 9, 2026, the average yearly pay for research additive laser in the United States is $100,127.00, according to ZipRecruiter salary data. Most workers in this role earn between $91,500.00 and $103,000.00 per year, depending on experience, location, and employer.

What is a research additive laser?

A Research Additive Laser typically refers to a specialized role or equipment used in the field of additive manufacturing, where lasers are used to fuse materials together layer by layer to create 3D objects. In research settings, additive lasers are used to experiment with new materials, improve manufacturing processes, and develop innovative prototypes. Professionals in this area often work in laboratories or industrial research environments, collaborating with engineers and scientists to advance 3D printing technologies. The use of lasers in additive manufacturing enables high precision and the ability to work with metals, plastics, and composites.

What are the key skills and qualifications needed to thrive as a research additive laser engineer?

To thrive as a Research Additive Laser Engineer, you need a solid background in materials science, engineering, and laser-based additive manufacturing, typically supported by an advanced degree in a related field. Proficiency with CAD software, laser systems, 3D printing technologies, and possibly certifications in additive manufacturing are highly valuable. Strong analytical thinking, problem-solving skills, and effective communication help you excel in collaborative research and innovation-driven environments. These competencies are crucial for driving advancements in additive laser technologies and ensuring the quality and efficiency of research outcomes.

What are some common challenges faced by professionals working in research additive laser, and how can they be addressed?

Professionals in Research Additive Laser often encounter challenges such as keeping up with rapid advancements in laser technologies and materials, troubleshooting equipment malfunctions, and ensuring precise calibration for optimal results. Additionally, collaborating across multidisciplinary teams—such as material scientists, engineers, and software developers—requires clear communication and adaptability. Staying proactive through continuous learning, regular equipment maintenance, and open collaboration can help address these challenges and contribute to successful project outcomes.

What other helpful pages are available for Research Additive Laser?

Other pages related to Research Additive Laser:

Infographic showing various Research Additive Laser job openings in the United States as of September 2026, with employment types broken down into 1% Internship, 1% As Needed, 88% Full Time, 9% Part Time, and 1% Contract. Highlights an 79% Physical, 3% Hybrid, and 18% Remote job distribution, with an average salary of $100,127 per year, or $48.1 per hour.

NIST PREP Research Scientist in Open-Architecture Additive Manufacturing Platform Development

Gaithersburg, MD • On-site

Southeastern Universities Research Association
11 - 50 employees

$115K - $126K/yr

Full-time

Re-posted 15 days ago


Job description

This position is part of the National Institute of Standards (NIST) Professional Research Experience (PREP) program. NIST recognizes that its research staff may wish to collaborate with researchers at academic institutions on specific projects of mutual interest, thus requires that such institutions must be the recipient of a PREP award. The PREP program requires staff from a wide range of backgrounds to work on scientific research in many areas. Employees in this position will perform technical work that underpins the scientific research of the collaboration.
Research Title: Open-Architecture Additive Manufacturing Platform Development
The work will entail: As part of its efforts to meet the needs of U.S. manufacturers in advanced manufacturing, the National Institute of Standards and Technology (NIST) has developed an open-architecture Additive Manufacturing (AM) platform. This platform consists of open-architecture AM testbeds, including the Additive Manufacturing Metrology Testbed (AMMT) and the Laser Processing and Metrology Testbed (LPDT), as well as an open-architecture AM processing software utility known as Smart Additive Manufacturing (SAM). AMMT is a full-scale AM machine equipped with dual lasers and the capability to emulate most commercial laser powder bed fusion machines while building industrial-scale parts. It is powered by open-architecture pointwise control technology and supports closed-loop control based on in-situ measurements of melt pool area using field-programmable gate array (FPGA)-based cameras and layer-wise surface profile measured by a laser profiler. LPDT is a portable testbed that can be installed and operated under high-energy synchrotron X-ray measurements to observe internal process phenomena, using the same control architecture as AMMT, and complements the AM process measurements conducted on AMMT. The SAM utility converts computer-aided design (CAD) designs into scan commands with maximum flexibility, compatible with both Common Layer Interface (CLI) and G-code and provides full transparency through intermediate output files including sliced layers, G-code, and pointwise commands, enabling unambiguous execution on open-architecture AM testbeds. Together, this platform enables research that advances additive manufacturing from a geometry-focused paradigm to a material-focused and process-aware framework. The Research Associate will assist NIST engineers in developing and improving this platform, including new mechanical, electrical, and optical hardware and control software for the AM testbeds, enhancing the SAM software utilities, supporting experiment planning and execution at NIST and external synchrotron X-ray facilities, and contributing to data processing, analysis, and dissemination efforts that support the NIST open-architecture AM platform.
U.S. Citizen preferred
Key responsibilities will include but are not limited to:
  • Analyzing, pre-processing, and formatting data generated from NIST AM testbeds, and comparing these data with datasets acquired from other NIST systems and external collaborators.
  • Developing methods to fuse multi-modality data from AM process monitoring for process anomaly detection and quality assessment.
  • Presenting research results at internal and external meetings and assisting in organizing workshops to disseminate NIST open-architecture AM platforms.
  • Providing assistance with CAD, digital signal processing hardware and algorithms, and prototyping of new measurement systems on the AM testbeds.
  • Assisting in deploying real-time feedback control capabilities on AMMT and LPDT as a retrofit solution for existing AM systems.
  • Providing technical support for the planning, execution, and data collection phases of experiments conducted on the AMMT at NIST.
  • Providing end-to-end support for synchrotron-based research, from the logistics of LPDT transport and setup at external facilities to the post-experimental analysis of complex X-ray diffraction data

Qualifications
  • PhD degree in Mechanical Engineering, Information Science, or a closely related field.
  • Eight or more years of relevant research experience in additive manufacturing or closely related advanced manufacturing systems.
  • Demonstrated expertise in laser-based metal additive manufacturing processes.
  • Extensive experience with in-situ measurements and process monitoring applied to advanced manufacturing processes. Experience with high-speed visible and thermographic imaging techniques preferred.
  • Strong background and demonstrated experience working with and developing applied machine learning and deep learning algorithms, with experience in machine vision and image processing applications preferred.
  • Experience with AM system control frameworks and familiarity with industry AM communication protocols.
  • Experience with FPGA-based sensing systems, including familiarity with FPGA architectures and at least one FPGA programming or integration workflow.
  • Demonstrated professional service and leadership experience, including organizing workshops, seminars, conferences, or hackathon-style technical events.
  • Strong oral and written communication skills, supported by a record of peer-reviewed publications and presentations to technical and multidisciplinary audiences.

Privacy Act StatementAuthority: 15 U.S.C. § 278g-1(e)(1) and (e)(3) and 15 U.S.C. § 272(b) and (c)
Purpose: The National Institute for Standards and Technology (NIST) hosts the Professional Research Experience Program (PREP) which is designed to provide valuable laboratory experience and financial assistance to undergraduates, post-bachelor's degree holders, graduate students, master's degree holders, postdocs, and faculty.
PREP is a 5-year cooperative agreement between NIST laboratories and participating PREP Universities to establish a collaborative research relationship between NIST and U.S. institutions of higher education in the following disciplines including (but may not be limited to) biochemistry, biological sciences, chemistry, computer science, engineering, electronics, materials science, mathematics, nanoscale science, neutron science, physical science, physics, and statistics. This collection of information is needed to facilitate administrative functions of the PREP Program.
Routine Uses: NIST will use the information collected to perform the requisite reviews of the applications to determine eligibility, and to meet programmatic requirements. Disclosure of this information is also subject to all the published routine uses as identified in the Privacy Act System of Records Notices: NIST-1: NIST Associates.
Disclosure: Furnishing this information is voluntary. When you submit the form, you are indicating your voluntary consent for NIST to use of the information you submit for the purpose stated.
SURA is an Equal Opportunity Employer. We believe that no one should be discriminated against because of their differences, such as age, disability, ethnicity, gender, gender identity and expression, religion, or sexual orientation. All employment decisions shall be made without regard to age, race, creed, color, religion, sex, national origin, ancestry, disability status, veteran status, sexual orientation, gender identity or expression, genetic information, marital status, citizenship status, or any other basis as protected by federal, state, or local law.
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