Quick Overview
Job Description
Role: Forward Deployed Engineer (FDE)
Location: Minnesota(Onsite)
Duration: Long Term
Role Summary
A Forward Deployed Engineer (FDE) is a hands-on engineer who works closely with client business and technology teams to design, build, and deploy AI-driven solutions that solve real, high-impact problems. This role blends strong software engineering fundamentals, GenAI expertise, and consulting skills to translate ambiguous requirements into production-ready solutions embedded directly into customer workflows.
FDEs operate at the intersection of engineering, AI, and customer delivery—rapidly prototyping, deploying, and iterating solutions to drive measurable outcomes.
Key Responsibilities (6)
- Client-Embedded Problem Solving: Work directly with client stakeholders to understand workflows, pain points, and constraints, translating them into clear technical and AI use cases.
- Solution Design & Development: Build end-to-end solutions using Python/Java, APIs, data pipelines, cloud services, and GenAI technologies (LLMs, prompts, agents).
- Rapid Prototyping & Delivery: Develop and deploy prototypes and working solutions quickly, prioritizing speed-to-value and practical applicability over long development cycles.
- Deployment & Integration: Integrate solutions into existing enterprise environments, systems, and workflows while ensuring reliability, security, and scalability.
- Stakeholder Communication & Demos: Communicate complex technical solutions in clear business terms; support client demos, walkthroughs, and executive readouts.
- Feedback & Continuous Improvement: Capture insights from client usage and feedback, refining solutions and sharing learnings with internal and client delivery teams.
Required Qualifications (5)
- Strong software engineering fundamentals, including data structures, system design, APIs, and cloud-based architectures.
- Hands-on development experience with Python (or Java) building production-grade applications and services.
- Hands-on experience applying AI Development Lifecycle (AIDLC) techniques to design and deliver AI solutions.
- Practical experience with GenAI / LLMs, including prompt engineering and GenAI-powered applications.
- Proven ability to work in ambiguous environments and deliver solutions end-to-end—from problem definition through deployment.
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