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Phd Additive Manufacturing Laser Jobs (NOW HIRING)

Internal/external technical contact for the additive manufacturing process for laser powder bed fusion (LPBF). * Standardize operation and maintenance instructions for additive machines and related ...

Internal/external technical contact for the additive manufacturing process for laser powder bed fusion (LPBF). * Standardize operation and maintenance instructions for additive machines and related ...

About Us Founded in 2015 to develop the world's first industrially scalable laser metal additive manufacturing solution, VulcanForms is reshaping how the world manufactures critical products. We ...

About Us Founded in 2015 to develop the world's first industrially scalable laser metal additive manufacturing solution, VulcanForms is reshaping how the world manufactures critical products. We ...

Internal/external technical contact for the additive manufacturing process for laser powder bed fusion (LPBF). * Standardize operation and maintenance instructions for additive machines and related ...

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Phd Additive Manufacturing Laser information

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How much do phd additive manufacturing laser jobs pay per hour?

As of Jun 9, 2026, the average hourly pay for phd additive manufacturing laser in the United States is $19.90, according to ZipRecruiter salary data. Most workers in this role earn between $17.07 and $21.63 per hour, depending on experience, location, and employer.

What is a PhD in Additive Manufacturing Laser?

A PhD in Additive Manufacturing Laser is a doctoral degree focused on the study and advancement of laser-based additive manufacturing techniques, such as selective laser sintering or laser metal deposition. Students in this program conduct original research to improve the processes, materials, and applications of laser additive manufacturing. Graduates often work in academia, research institutions, or industry roles developing innovative manufacturing solutions. The degree typically requires coursework, comprehensive exams, and a dissertation based on novel research.

What are some common research challenges faced in a PhD role focused on additive manufacturing using lasers?

PhD researchers in additive manufacturing with lasers often encounter challenges such as optimizing process parameters for different materials, controlling microstructure and porosity, and achieving repeatable results. The interdisciplinary nature of the work means you’ll collaborate closely with material scientists, mechanical engineers, and software developers. Additionally, troubleshooting equipment and developing novel experimental setups are frequent tasks, and staying current with rapidly evolving technologies is essential for success in this field.

What are the key skills and qualifications needed to thrive as a PhD in Additive Manufacturing Laser, and why are they important?

To excel in a PhD-level role in Additive Manufacturing Laser, you need advanced knowledge in materials science, laser processing, and additive manufacturing technologies, typically backed by a doctoral degree in engineering or a related field. Experience with CAD software, simulation tools, laser systems, and specialized equipment such as 3D printers is essential, along with familiarity with industry standards and data analysis platforms. Strong problem-solving abilities, research acumen, and effective communication skills are crucial for innovating and collaborating within multidisciplinary teams. These competencies are vital for driving research advancements, optimizing manufacturing processes, and successfully delivering cutting-edge solutions in the field.
Infographic showing various Phd Additive Manufacturing Laser job openings in the United States as of May 2026, with employment types broken down into 100% Full Time. Highlights an 100% In-person job distribution, with an average salary of $41,394 per year, or $19.9 per hour.
Additive Manufacturing Engineer

Additive Manufacturing Engineer

Allegheny Technologies Incorporated

Margate, FL • On-site

Full-time

Posted 13 days ago


Job description

ATI is currently seeking an Engineer I or II (Additive/3D Printing) to join our new facility located in Margate, FL. As an additive manufacturing engineer you will plan, design, and execute on both the manufacturing of additive build files and the post processing of said parts. This is an onsite position at our Margate facility 5 days per week.

You will also provide engineering support to the production process within the additive manufacturing segment of ATI including involvement in core additive process, CAD modeling from customer designs, preparing materials for printing, customer interaction, and other duties as assigned.

A successful Additive Engineer will quickly grasp ATI's business culture and processes, become proficient in all necessary software for the duties assigned, have a continuous improvement mindset, and be able to act quickly and decisively in a fast-paced environment.

Responsibilities:
  • Design of AM builds to be used for both production and R&D purposes.
  • Internal/external technical contact for the additive manufacturing process for laser powder bed fusion (LPBF).
  • Standardize operation and maintenance instructions for additive machines and related auxiliary equipment.
  • Provide technical support in resolving process-related non-conformances and customer complaints. Develop an understanding of process variables and key process indicators to ensure consistent results.
  • Evaluate and implement tools and techniques to improve monitoring during the Additive Manufacturing process to ensure quality of the final part. Collaborate with operations personnel to develop improvements to manufacturing processes and standards that enhance safety in the workplace, equipment performance and product quality.
  • Plan, execute and manage product/process continuous improvement programs that support the Additive Manufacturing Team.
  • Develop and maintain technical expertise in Additive Manufacturing processing of Ni/Ti/Al-based alloys, through experimentation, technical literature review, best practice exchanges across the company and attending technical conferences.