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Remote Robotic Welding Programmer Jobs in Georgia

Applied AI Engineer

Atlanta, GA · On-site +1

$170K - $230K/yr

Fully Remote (in the US) Salary: $170-230k DOE About the Product We build visual operations and ... Robotics perception * AR/VR or digital twin platforms * LLM and RAG systems over messy enterprise ...

Marketing Manager

Duluth, GA · On-site +1

$150K/yr

S. Market Development | Direct Hire | Hybrid / Remote ( Duluth, GA) | Up to $150,000 DOE What ... S. operation of a global robotics and automation manufacturer * Build-from-scratch marketing role ...

Consor Engineers is seeking a highly skilled and meticulous Senior Accounting Manager to lead core ... The role can be fully remote for candidates in the Eastern Time Zone What You'll Do: * Own and lead ...

Digital Manufacturing Engineer

Atlanta, GA · On-site +1

$53K - $122K/yr

From autonomous cars to life-saving robots, our digital and software technology experts think ... Location This is a Remote Role. About the job you're considering We are building modern, highly ...

Consor Engineers is seeking a highly skilled and meticulous Senior Accounting Manager to lead core ... The role can be fully remote for candidates in the Eastern Time Zone What You'll Do: * Own and lead ...

Marketing Manager

Duluth, GA · On-site +1

$75K - $150K/yr

HD Hyundai Robotics Job Title: Marketing Manager Location: Hybrid / Remote Department: Sales ... Collaborate with engineering and product teams to translate expertise into market-facing content

Nationwide (On-site or Remote) About Us: Geek+ is a leading robotics technology company ... Bachelor's degree in business, marketing, engineering or relevant experience. * 3-5 years of ...

From autonomous cars to life-saving robots, our digital and software technology experts think ... Deer Valley Phoenix AZ / Redmond WA / Remote with ability to travel to one of the sites on need ...

Lead Estimator

Atlanta, GA · On-site +1

$100K - $151K/yr

Collaborate with engineering, software, project management, procurement, sales, and other SMEs to ... Remote within the United States. * Candidates must be able to support Eastern Time business hours ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

We deliver automation through a Robotics-as-a-Service model that combines industrial robotics ... The team partners closely with Engineering, Solutions, and Customer teams to educate manufacturers ...

Showing results 21-40

Remote Robotic Welding Programmer information

What is the difference between Remote Robotic Welding Programmer vs Robotic Welding Technician?

AspectRemote Robotic Welding ProgrammerRobotic Welding Technician
CredentialsWelding certifications, programming skills, technical trainingWelding certifications, technical training, hands-on experience
Work EnvironmentOffice or remote settings, programming and software developmentManufacturing floors, equipment setup, maintenance
Job FocusDeveloping and optimizing robotic welding programs remotelyOperating, maintaining, troubleshooting robotic welding equipment

Remote Robotic Welding Programmers focus on creating and refining welding programs remotely, often requiring programming skills and certifications. Robotic Welding Technicians work directly on the manufacturing floor, handling equipment setup and maintenance. Both roles are essential in the welding industry but differ mainly in their work environment and daily tasks.

What are some common challenges faced by remote robotic welding programmers, and how can they be addressed?

Remote Robotic Welding Programmers often encounter challenges such as ensuring precise machine calibration without being physically present, troubleshooting equipment issues from a distance, and maintaining effective communication with on-site technicians. To address these challenges, it’s essential to utilize advanced remote monitoring software, maintain detailed documentation, and establish clear protocols for collaboration with shop-floor teams. Regular virtual meetings and remote diagnostics tools can help bridge the gap and ensure smooth workflow, even when working off-site.

What are the key skills and qualifications needed to thrive as a remote robotic welding programmer, and why are they important?

To thrive as a Remote Robotic Welding Programmer, you need expertise in welding processes, robotics programming, and a technical background in engineering or manufacturing. Familiarity with robotic programming languages (such as FANUC, ABB, or KUKA), CAD/CAM software, and industry certifications like AWS Certified Robotic Arc Welding are typically required. Strong problem-solving abilities, attention to detail, and effective communication are vital soft skills for troubleshooting and collaborating remotely. These skills ensure precise, efficient welding operations and support seamless integration of robotics in manufacturing environments.

What does a remote robotic welding programmer do?

A Remote Robotic Welding Programmer is responsible for creating, testing, and optimizing programs that control robotic welding equipment, often from an offsite location. They use specialized software to design weld paths, set parameters, and troubleshoot automation issues to ensure high-quality welds and efficient production. Working remotely, they may connect to robots through secure networks, collaborate with onsite technicians, and update programs to accommodate different products or materials. Their role is essential in industries such as automotive, aerospace, and manufacturing, where precision and automation are critical.

What are the most commonly searched types of Robotic Welding Programmer jobs in Georgia?

The most popular types of Robotic Welding Programmer jobs in Georgia are:

What job categories do people searching Remote Robotic Welding Programmer jobs in Georgia look for?

The top searched job categories for Remote Robotic Welding Programmer jobs in Georgia are:

What cities in Georgia are hiring for Remote Robotic Welding Programmer jobs?

Cities in Georgia with the most Remote Robotic Welding Programmer job openings:

Infographic showing various Remote Robotic Welding Programmer job openings in Georgia as of June 2026, with employment types broken down into 73% Full Time, 1% Part Time, 2% Temporary, 21% Contract, and 3% Nights. Highlights an 99% Physical, and 1% Remote job distribution.

Applied AI Engineer

Together For Talent

Atlanta, GA • On-site, Remote

$170K - $230K/yr

Full-time

Posted 13 days ago


Job description

Senior Applied AI Engineer | Spatial Computer Vision & Digital Twins

Location: Fully Remote (in the US)

Salary: $170-230k DOE

About the Product

We build visual operations and maintenance software for complex industrial facilities, using high-resolution 3D digital twins to give engineers and technicians clear visibility into plants, substations, and other critical spaces.

Customers in the energy and industrial sectors use the platform to visualize infrastructure, centralize asset information and documentation, and support immersive training and work execution.

The Opportunity

We are building a new spatial AI engine that looks at 3D facility scans and automatically identifies every pump, valve, motor, and device, then matches each physical asset to the correct tags, drawings, and records in customer databases.

Today, utilities and industrial companies often spend years with large teams manually fixing asset tags and documentation. The goal is to remediate tens of thousands of tags in months and eventually scale to millions of assets across fleets of plants and substations with minimal manual effort.

This engineer will be one of the first focused on this initiative, working closely with technology leadership and the existing platform team to design and build the system from the ground up.

What You’ll Own

  • Architect and build core components of the spatial AI engine, from ingesting 3D scene data to producing reliable, automatically generated asset tags and relationships that plug into a visual asset management platform.
  • Design pipelines that transform 3D digital twins into representations suitable for asset detection, spatial reasoning, and downstream AI workflows.
  • Develop and integrate computer vision models to detect and classify equipment in complex industrial environments, using techniques like object detection, segmentation, and 3D or spatial recognition.
  • Build LLM and RAG workflows that reconcile detected assets with messy documentation, including drawings, PDFs, legacy asset registers, and tribal knowledge, creating high-confidence matches between the physical world and digital records.
  • Implement robust backend services and APIs that expose these capabilities to 3D product experiences and visual work order workflows, collaborating with front-end engineers building immersive interfaces.
  • Define metrics, validation frameworks, and feedback loops so the system can scale from tens of thousands of assets at early customers to millions of assets across broader portfolios.
  • Work closely with customers and internal stakeholders to understand real-world constraints in power, industrial manufacturing, and other high-stakes environments.

Who You Are

We care more about the depth of problems you’ve solved than your exact background or years of experience.

  • You’ve built complex production systems end-to-end in a demanding domain such as computer vision, robotics, crypto infrastructure, AR/VR, industrial software, or something similarly technical and unstructured.
  • You are strong hands-on in Python and at least one modern web or backend stack such as TypeScript/Node, Go, or something similar.
  • Computer vision or image-based machine learning is your primary strength, whether in 2D, 3D, or spatial environments, and you have trained and deployed models for detection, recognition, or scene understanding.
  • You may also have strengths in LLMs, RAG pipelines, spatial computing, digital twins, 3D visualization, or building evaluation and monitoring systems around AI workflows.
  • You are comfortable jumping into new domains quickly and learning the vocabulary and operating constraints of critical infrastructure.
  • You like building real systems that are used in production, not just prototypes or research demos.
  • You are energized by ambiguous, greenfield technical problems and enjoy operating in a small, fast-moving team.

Why This Role

  • High-impact problem: this work has the potential to change how critical infrastructure is documented, maintained, and operated.
  • Greenfield scope: this is a new product area with no established playbook, so this person will help define architecture, technical direction, and best practices from the beginning.
  • Flexible profile: the team is open-minded on title, years of experience, and exact background for the right builder.
  • Compensation flexibility: target compensation was initially discussed around the mid-to-upper 100s, but there is openness to go higher for the right person, especially for stronger computer vision talent.
  • Team design flexibility: the company may hire one exceptional engineer or split the work across multiple hires depending on the skill mix they find.

Ideal Background

This role is likely to fit someone coming from one or more of the following areas:

  • Applied computer vision
  • 3D perception or spatial AI
  • Robotics perception
  • AR/VR or digital twin platforms
  • LLM and RAG systems over messy enterprise data
  • Full-stack or backend engineering in highly complex systems
  • Crypto or other technically demanding startup environments where engineers build from scratch in ambiguity

Notes on Fit

The highest-priority need is someone with strong CV / image / spatial recognition ability. Secondary value comes from LLM / AI system experience. Generalist full-stack capability is also helpful, but it is the third priority behind the applied AI and perception side.

The right person does not need to come directly from digital twins or industrial software. Adjacent experience solving difficult, novel technical problems can be just as valuable if they are sharp, adaptable, and capable of building in ambiguity.