Forward Deployed AI Engineer

Qureos

• $180K — $260K *
Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3-6 years of experience in full-stack or solutions engineering roles.
  • Proficient in TypeScript, Python, React, and SQL.
  • Experience deploying production-level AI applications, not just prototypes.
  • Familiar with monitoring and evaluating AI systems for performance and autonomy.
  • Strong communication skills for engaging with both technical and non-technical stakeholders.
  • Ability to independently manage projects from problem identification to deployment.
  • Solid understanding of operational workflows and business needs.

Responsibilities

  • Collaborate with portfolio companies to identify operational challenges and business priorities.
  • Pinpoint opportunities for AI solutions to enhance efficiency and outcomes.
  • Develop and deploy comprehensive AI solutions, including backend and user interfaces.
  • Continuously monitor and improve the reliability and performance of production systems.
  • Work closely with general managers to translate business needs into technical solutions.
  • Own the deployment process from discovery to production rollout.
  • Document successful strategies and lessons learned for future reference.
  • Travel to portfolio company locations to work directly with teams.

Benefits

  • Hybrid work model with flexibility for in-office and remote work.
  • Competitive equity package to share in the company's success.
  • Opportunity to work on impactful, real-world AI solutions rather than just prototypes.
Full Job Description
Full-time | Hybrid | Toronto | $180K-$260K

About the Role

We're looking for a AI Deployment Engineer with 3-6 years of experience to work closely with portfolio businesses, understand their operational challenges, and build production-grade AI and agentic solutions that create measurable impact. This is a highly hands-on engineering role. You'll work directly with business operators and technical teams, taking projects from identifying the right opportunity through development, deployment, optimization, and handoff. You'll have the opportunity to build systems that are actively used in real-world operations rather than working solely on prototypes or internal tooling.

What You'll Do
  • Work directly with portfolio companies to understand their workflows, pain points, and business priorities.
  • Identify high-impact opportunities where AI and agentic workflows can improve efficiency or outcomes.
  • Build and deploy end-to-end solutions, including backend integrations, agent workflows, prompts, evaluations, and user-facing interfaces.
  • Monitor production systems and continuously improve their reliability, performance, and level of autonomy.
  • Partner closely with general managers and other non-technical stakeholders to translate business needs into practical technical solutions.
  • Take ownership of deployments from initial discovery through production rollout and stabilization.
  • Document successful approaches, technical patterns, and lessons learned so they can be reused across other businesses.
  • Travel regularly to portfolio company locations and work closely with teams on-site.


What We're Looking For
  • 3-6 years of experience in full-stack engineering, customer-facing software engineering, solutions engineering, or forward-deployed engineering.
  • Strong full-stack development skills, including TypeScript or Python, React, and SQL.
  • Experience building and deploying production LLM or agentic applications, rather than experimental demos alone.
  • Familiarity with evaluations, monitoring, autonomy controls, and measuring outcomes for AI-powered systems.
  • Experience working directly with customers, operators, or business stakeholders.
  • Ability to independently take a project from understanding the problem through implementation and production deployment.
  • Strong business judgment and the ability to understand operational workflows and translate them into technical solutions.
  • Comfortable communicating with both highly technical and non-technical stakeholders.
  • Location & Work ModelToronto
  • Hybrid role with a minimum of 3 days per week in-office; 4 days preferred.
  • Approximately 2-3 days per week of domestic travel to portfolio company locations.
  • Compensation$180,000-$260,000
  • Competitive equity package


Technology
  • TypeScript
  • Python
  • React
  • SQL
  • LLMs / Foundation Models
  • Agentic Workflows
  • Evals
  • Snowflake
  • Databricks
  • Apache Iceberg
  • Event-driven Systems


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