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You will design, deploy, and operate AI-powered enterprise systems that automate complex business workflows. This involves architecting agent-based solutions, ensuring system reliability in production, and collaborating with internal teams to solve operational bottlenecks.
Role: Senior Applied AI Engineer – Enterprise Systems
Location: Remote (US) or Los Angeles (preferred)
Compensation:
• Remote: $70,000–$120,000
• Los Angeles: $110,000–$160,000
Reports to: VP of Information Systems (Eilrama)
Team: Information Systems
At TubeScience, we build software systems that combine AI, engineering, and automation to solve complex operational problems at scale.
We’re looking for an engineer who has evolved from systems engineering into applied AI—someone who enjoys designing reliable production systems, integrating modern AI capabilities, and owning them in production.
This is an internal Forward Deployed Engineering role.
Rather than building products for external customers, you’ll work directly with internal stakeholders to identify operational bottlenecks, architect AI-powered solutions, deploy them rapidly, and continuously improve them based on real business needs.
This is not an AI research or model-training position. We apply state-of-the-art AI models to solve enterprise problems through software engineering.
You’ll own the design, implementation, deployment, and operation of AI-powered enterprise systems that automate business processes across the company.
Success in this role means building systems that don’t just work—they continue working reliably after deployment.
You’ll be responsible for the complete lifecycle of production AI systems, including architecture, deployment, monitoring, debugging, incident response, and continuous improvement.
We’re looking for systems engineers who naturally evolved into building AI-powered software—not AI hobbyists who recently discovered infrastructure.
You likely have:
The strongest candidates typically come from backgrounds such as:
They later expanded into Applied AI rather than beginning their careers in AI.
Experience at a large technology company building production systems is highly valued.
Experience with any of the following is a plus:
You’ll work on high-impact internal systems where your software is deployed quickly, used daily across the business, and has measurable operational impact.
We value engineers who take ownership from architecture through production, iterate rapidly, and continuously improve the systems they build.
If you’re excited about applying AI to solve real enterprise problems—and owning those systems long after deployment—we’d love to hear from you
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