Manager - AI Forward Deployed Engineering

Vibehackers

Hinoba-an

On-site

PHP 1,800,000 - 2,400,000

Full time

2 days ago
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Job summary

Vibehackers is seeking a Manager — Forward Deployed Engineer (AI & Data) to lead end-to-end GenAI solution delivery for clients. You will design, build, deploy, and operate production-grade LLM-driven applications, RAG systems, and agentic workflows, delivering measurable business value.

The role emphasizes hands-on development, client collaboration, and creating reusable accelerators and reference architectures to drive large-scale AI adoption.

Qualifications

  • 9+ years of experience in software engineering, data engineering, or AI/ML.
  • Strong hands-on experience building, deploying, and operating production-grade systems.
  • Expert-level proficiency in Python for large-scale, high-performance applications.
  • Solid foundation in distributed systems, microservices, APIs, and cloud-native architectures.
  • Proven delivery experience in client-facing and high-ambiguity environments.
  • Excellent communication skills with technical teams and business stakeholders; client experience required.
  • Demonstrated ability to independently own and deliver complex, high-impact initiatives.

Responsibilities

  • Lead end-to-end delivery at strategic customers: discovery, design, development, and production deployment.
  • Translate complex business problems into executable GenAI solutions in partnership with client business and engineering teams.
  • Build LLM-powered applications (copilots, assistants), RAG systems, and agentic workflows; integrate with enterprise data platforms, APIs, and external systems.
  • Optimize solutions for latency, cost, accuracy, scalability, security, and compliance.
  • Convert proofs-of-concept into production-grade, enterprise-ready platforms through rapid iteration.
  • Architect scalable, reliable, and observable systems using cloud-native patterns.
  • Create reusable accelerators, reference implementations, and best practices for enterprise GenAI adoption.
  • Act as a trusted technical advisor to senior and executive client stakeholders.

Skills

Python
Distributed Systems
APIs
Cloud-native
Client-facing
Delivery
MLOps

Tools

OpenAI API
Cursor
Palantir
Azure
AWS
GCP
CI/CD

Job description

Manager - AI Forward Deployed Engineering

Uses Cursor and LLM APIs to build GenAI apps and agentic workflows—directly tied to vibe coding with AI assistants and rapid prototyping.

About the Role

Lead end-to-end design, build, and deployment of production-grade GenAI solutions as a hands-on Forward Deployed Engineer working directly with clients. Build LLM-driven applications, RAG systems, and agentic workflows while creating reusable accelerators and enabling large-scale AI adoption.

Job Description
Role

Manager — Forward Deployed Engineer (AI & Data). Responsible for designing, building, and deploying production-grade GenAI and AI/ML solutions directly with clients. Focus on building LLM-driven applications, RAG systems, and agentic workflows and delivering measurable business value while creating reusable accelerators and reference architectures.

Key Responsibilities
  • Lead end-to-end delivery at strategic customers: discovery, design, development, and production deployment.
  • Translate complex business problems into executable GenAI solutions in partnership with client business and engineering teams.
  • Build LLM-powered applications (copilots, assistants), RAG systems, and agentic workflows; integrate with enterprise data platforms, APIs, and external systems.
  • Optimize solutions for latency, cost, accuracy, scalability, security, and compliance.
  • Convert proofs-of-concept into production-grade, enterprise-ready platforms through rapid iteration.
  • Architect scalable, reliable, and observable systems using cloud-native patterns.
  • Create reusable accelerators, reference implementations, and best practices for enterprise GenAI adoption.
  • Act as a trusted technical advisor to senior and executive client stakeholders.
Requirements
Mandatory
  • 9+ years of experience in software engineering, data engineering, or AI/ML.
  • Strong hands‑on experience building, deploying, and operating production-grade systems.
  • Expert‑level proficiency in Python for large‑scale, high‑performance applications.
  • Solid foundation in distributed systems, microservices, APIs, and cloud-native architectures.
  • Proven delivery experience in client‑facing and high‑ambiguity environments.
  • Excellent communication skills with technical teams and business stakeholders; client experience required.
  • Demonstrated ability to independently own and deliver complex, high‑impact initiatives.
Desired / Preferred
  • Hands‑on experience with LLM APIs, prompt engineering, RAG architectures, and vector databases.
  • Experience with agentic workflows and orchestration frameworks.
  • Exposure to AI ecosystem tools such as OpenAI, Claude, Cursor, Palantir, and hyperscalers (Azure, AWS, GCP).
  • Experience with DevOps, CI/CD pipelines, infrastructure automation, MLOps practices, and model monitoring.
  • Consulting, global delivery, or field engineering experience with direct client exposure; prior FDE/solutions/field engineer background.
  • Experience building 0→1 AI or data products; frontend/UI exposure for AI‑driven applications.
What This Role Is Not
  • Not a people management role.
  • Not a delivery governance or program management role.
  • Not limited to architecture reviews — expected to build and ship.
Attributes
  • Deep technical expertise and a builder mindset; senior engineer who codes regularly.
  • Comfortable in ambiguous, client‑facing environments and able to learn quickly.

Python LLM APIs RAG (Retrieval-Augmented Generation) Agentic workflows Vector databases OpenAI Claude Cursor Palantir Azure AWS GCP CI/CD DevOps Cloud-native patterns APIs MLOps Prompt engineering

Skills

System Design Distributed Systems Microservices APIs Cloud-native Architecture Communication Client‑facing Delivery Solution Delivery Rapid Prototyping Hands‑on Coding DevOps CI/CD Infrastructure Automation MLOps Prompt Engineering Technical Leadership Integration Scalability & Reliability Model Monitoring

Python LLM APIs RAG (Retrieval-Augmented Generation) Agentic workflows Vector databases OpenAI Claude Cursor Palantir Azure AWS GCP CI/CD DevOps Cloud-native patterns APIs MLOps Prompt engineering

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