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Remote Labview Software Engineer Jobs in Utah (NOW HIRING)

Software Engineering Manager Remote, Full-Time About the Team/Role WEX FSM (formerly Payzerware), is an end-to-end Field Service Management platform that helps contractors run their business, grow ...

Software Engineering Manager Remote, Full-Time About the Team/Role WEX FSM (formerly Payzerware), is an end-to-end Field Service Management platform that helps contractors run their business, grow ...

Software Engineer - AI-Native Full Stack Bolo.ai Bay Area (Hybrid) | Salt Lake City Area (Remote) | Full-Time Senior Engineer The Role Has Changed Three person engineering teams are building what ...

Senior Software Developer

Salt Lake City, UT · On-site +1

$147K - $198K/yr

The software developers on our team are the primary contributors to Neuron on both the frontend and ... You will work closely with a fully remote team of designers, developers, and stakeholders to add ...

Senior Backend Engineer - AI Platform

Salt Lake City, UT · On-site +1

$118K - $156K/yr

This is a remote position; however, the candidate must reside within 30 miles of one of the ... Seattle, WA; and Portland, ME About the Team/Role We are seeking a seasoned Sr. Software Engineer ...

Senior Backend Engineer - AI Platform

Salt Lake City, UT · On-site +1

$118K - $156K/yr

This is a remote position; however, the candidate must reside within 30 miles of one of the ... Seattle, WA; and Portland, ME About the Team/Role We are seeking a seasoned Sr. Software Engineer ...

Senior Web Engineer

Salt Lake City, UT · On-site +1

$121K - $145K/yr

This is a remote position; however, the candidate must reside within 30 miles of one of the ... Seattle, WA; and Portland, ME About the Team/Role We're looking for a Senior software engineer with ...

Senior Web Engineer

Salt Lake City, UT · On-site +1

$121K - $145K/yr

This is a remote position; however, the candidate must reside within 30 miles of one of the ... Seattle, WA; and Portland, ME About the Team/Role We're looking for a Senior software engineer with ...

Lead agile software processes for engineering teams and introduce best-in-class industry practices ... You have experience managing remote teams * The ability to thrive on a fast pace environment with ...

Two-time winner (2024, 2023) Top Workplace Innovation * 2025 Remote Work * 2024 Technology Industry ... Lead, coach, and develop a team of approximately 5-6 software engineers and software test engineers.

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Remote Labview Software Engineer information

What are some common challenges faced by Remote Labview Software Engineers, and how can they be addressed?

One common challenge for Remote Labview Software Engineers is maintaining seamless communication with hardware teams, as physical access to test equipment is often limited. This can be addressed by leveraging remote desktop tools, establishing clear documentation, and scheduling regular video meetings to review system setups and test results. Additionally, collaborating closely with onsite colleagues and utilizing simulated environments can help bridge the gap when direct hardware interaction is not possible. Staying proactive in communication and troubleshooting helps ensure projects stay on track despite the distance.

What is a Remote LabVIEW Software Engineer?

A Remote LabVIEW Software Engineer is a professional who designs, develops, and maintains software applications using National Instruments' LabVIEW platform, while working remotely from any location. They create custom solutions for test, measurement, automation, and data acquisition systems, often collaborating with engineering teams virtually. The role typically involves programming in LabVIEW, troubleshooting software and hardware integration issues, and ensuring system reliability and performance. Remote LabVIEW engineers leverage communication and project management tools to effectively work with clients and teams across different locations.

What are the key skills and qualifications needed to thrive as a Remote LabVIEW Software Engineer, and why are they important?

To thrive as a Remote LabVIEW Software Engineer, you need strong proficiency in LabVIEW programming, a background in electrical or computer engineering, and experience with automated test systems. Familiarity with National Instruments hardware, version control systems, and certifications such as NI Certified LabVIEW Developer (CLD) are highly valued. Excellent problem-solving, self-motivation, and clear written communication skills set top candidates apart, especially when collaborating remotely. These skills are essential for delivering reliable software solutions, ensuring effective teamwork, and maintaining project timelines in distributed work environments.

What is the difference between Remote Labview Software Engineer vs Remote Test Engineer?

AspectRemote Labview Software EngineerRemote Test Engineer
Required CredentialsBachelor's in Engineering, LabVIEW certification often preferredBachelor's in Engineering or related field, certifications may vary
Work EnvironmentDevelops and tests LabVIEW applications remotely, often in R&D or automationDesigns and executes testing procedures remotely, focusing on product validation
Employer & Industry UsageElectronics, automation, aerospace, manufacturingElectronics, automotive, aerospace, manufacturing

The main difference is that Remote Labview Software Engineers focus on developing software using LabVIEW for automation and data acquisition, while Remote Test Engineers concentrate on testing and validating products remotely. Both roles require technical skills and often work in similar industries, but their core responsibilities differ.

What are the most commonly searched types of Labview Software Engineer jobs in Utah? The most popular types of Labview Software Engineer jobs in Utah are:
What job categories do people searching Remote Labview Software Engineer jobs in Utah look for? The top searched job categories for Remote Labview Software Engineer jobs in Utah are:
What cities in Utah are hiring for Remote Labview Software Engineer jobs? Cities in Utah with the most Remote Labview Software Engineer job openings:

Software Engineer AI-Native Full Stack

Bolo AI

Salt Lake City, UT • On-site, Remote

Other

PTO

Posted 10 days ago


Job description

Software Engineer — AI-Native Full Stack

Bay Area (Hybrid) | Salt Lake City Area (Remote) | Full-Time Senior Engineer

Bolo.ai

Bay Area (Hybrid) | Salt Lake City Area (Remote) | Full-Time

The Role Has Changed

Three person engineering teams are building what used to take thirty. Not by working harder, but by working differently. The engineers shipping at this pace don't write code. They write specs precise enough that agents implement them correctly. They build harnesses. CI gates, structural tests, linting rules, and architectural enforcement that mechanically prevent entire classes of agent mistakes. They design validation systems where agents write the tests and humans verify that features actually work from the user's perspective.

The code is a generated artifact. The spec, the harness, and the validation infrastructure are what engineers maintain.

This is how we work at Bolo.ai. We're hiring engineers who already work this way, or who have the depth to start.

The Company

Bolo.ai builds generative AI systems for the energy industry, making daily work faster, safer, and better for heavy industry workers. We have Fortune 500 contracts, production deployments, and growing enterprise demand. We're scaling.

Energy adds real constraints. Regulatory compliance, data residency, operational technology integration, deployment across cloud and on-premises infrastructure. These constraints make the architecture harder and the work more interesting.

The Work

You'll spend your time on four things:

Specifications. You write behavioral specs, architectural constraints, and feature requirements that agents implement against. When agent output misses the mark, you tighten the spec. Not by adding more words, but by being more precise about what "correct" means. This requires understanding the system deeply enough to define its behavior at every layer.

Harness. You build and maintain the infrastructure that keeps agents producing reliable code. Structural tests that enforce architectural boundaries. Linting rules where every failure message teaches the agent what went wrong. CI gates that reject drift. Structured knowledge bases agents can navigate. The principle: every class of agent mistake gets a mechanical fix so it never recurs.

Validation. Agents write the code. Agents write the tests. You verify that features work from the user's perspective, under real deployment conditions, against edge cases that matter in production. You define scenarios and acceptance criteria. You build the end-to-end checks, behavioral verification, and automation that make this trustworthy at scale. When something breaks, your job is diagnosing whether the failure is in the spec, the harness, or the agent's implementation, and fixing the right layer.

Architecture and operations. Our systems run across cloud providers and on-premises environments. You design modular abstractions, clean interfaces where deployment targets don't leak into application logic. You own production systems used by energy companies in regulated environments where failures have real consequences. Reliability, observability, and graceful degradation matter here.

What Makes Someone Good at This

7+ years of engineering experience, applied at a higher altitude. You need years of building and debugging production systems. Not because you'll write every line, but because you can't design a harness that catches real failures, write a spec that anticipates edge cases, or diagnose a broken feature across the full stack without that foundation. The depth serves the abstraction.

Systems thinking over code fluency. How components interact. Where failures cascade. What breaks when requirements change. What to anticipate before it happens. This is what agents are worst at and what matters most.

An agent-driven workflow. You already direct AI agents (Claude Code, Codex, Cursor, or similar) to handle implementation while you focus on architecture, specification, and validation. Or you have the engineering judgment to make that transition and the motivation to do it now.

Experience building the infrastructure around agents. CI enforcement, scenario-based testing, documentation systems agents can consume, structured knowledge bases — you've built some of this, or you have specific ideas about how and why.

Comfort making decisions with incomplete information. Startup. Requirements shift. The right approach isn't always obvious. You move forward, and you know when to ask versus when to make a call.

Direct communication. You give and receive honest feedback. You can disagree with a decision, say so clearly, and still commit to the outcome. We care about getting it right more than being right.

Enthusiasm for a field that reinvents itself quarterly. Tools change. Workflows get replaced. Best practices from three months ago become obsolete. You're energized by that. You see this as the most interesting period in the history of software.

About Us

Small, senior-leaning engineering team. Real ownership, direct impact, no layers between you and the work. We expect a lot from each other and give each other the room to deliver.

Sustainable pace over heroic sprints.

Bay Area (hybrid) or Salt Lake City area (remote). No visa sponsorship.

What We Offer

Bolo AI is headquartered in Palo Alto, backed by True Ventures, Benchstrength, Accomplice, J Ventures, and Beat Ventures.

  • Competitive compensation with equity so you share in what we build together.
  • Hybrid flexibility — in-person collaboration in Palo Alto with room to work how you're most productive.
  • Early-stage ownership — join at a stage where your decisions shape the product, the architecture, and the engineering culture.
  • Generous PTO and flexible working hours.
Hiring Process

We evaluate how you work in an AI-native workflow. AI tool usage is expected, not just permitted. We're looking at engineering judgment. Can you write specs agents execute well against, build systems that catch real failures, and reason about problems across the full stack.

We'll be straightforward about our process, give you real information to evaluate us, and give you feedback regardless of outcome.

If this sounds like what you're already building toward, we'd like to talk.