M55 - Full Stack Engineer

FPT Software

Singapore

On-site

SGD 120,000 - 180,000

Full time

10 days ago

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Job summary

FPT Software in Singapore is seeking hands-on AI Application Engineers to turn prototype AI into scalable production solutions. You will work across product owners, data teams and security to harden AI use cases with robust architecture, secure APIs and automated deployment.

Ideal candidates have 7+ years of software engineering, full-stack capabilities across React/TypeScript and Node.js/Python, plus experience with Azure AI services, CI/CD and secure SDLC practices to deliver reliable,

Qualifications

  • 7+ years of hands-on software engineering experience in enterprise or cloud-native apps.
  • Strong full-stack capability with modern frontend, backend and API frameworks.
  • Hands-on experience designing and integrating REST APIs and enterprise integrations.
  • Experience building AI-enabled apps using LLMs, embeddings, RAG, workflows or orchestration frameworks.
  • Experience with Azure AI services and cloud deployment patterns.
  • Secure SDLC practices including secrets management and least-privilege access.

Responsibilities

  • Refactor prototypes into production-grade solutions with clean architecture and secure APIs.
  • Design, build and harden AI-enabled apps (chatbots, RAG, workflow assistants) and integrations.
  • Clarify use-case outcomes, adoption metrics and production-readiness with stakeholders.
  • Implement full-stack capabilities across frontend, backend, APIs, and data integration.
  • Collaborate with platform engineers to deploy apps using approved cloud patterns and CI/CD pipelines.
  • Develop reusable patterns, templates and playbooks for AI app delivery.
  • Support production-readiness assessments covering security, privacy and observability.
  • Build automated test suites and observability for AI applications.

Skills

Full-stack development
REST APIs
Azure AI services
CI/CD
Security
OAuth 2.0 / Identity
Frontend: React/TypeScript
Backend: Node.js / Python
AI applications
Documentation

Tools

Azure DevOps
GitHub Actions
Docker
Kubernetes
LangChain
PostgreSQL

Job description

Overview

We are looking for hands-on AI Application Engineers with strong AI literacy to help solve the AI democratisation problem: many teams are building promising AI prototypes with high enthusiasm, but most are not yet ready for production. The answer is not to stop vibe coding or slow down experimentation, but to create a controlled path from prototype to production with clear ownership, prioritisation, engineering hardening and reusable platform patterns.

This role sits within the AI Portfolio & Acceleration Squad in Platform & Software Engineering Division and supports the organisation's move towards governed, scalable and responsible AI adoption. The successful candidate will work across business users, product owners, platform engineers, data teams, cyber/security, privacy and operations stakeholders to assess, rebuild, harden and productise high-value AI use cases at pace. The role requires strong software engineering fundamentals, practical fluency with AI-assisted development tools, and the ability to use AI to scale engineering throughput, shorten delivery cycles and accelerate MVP-to-production conversion while maintaining production discipline, security, compliance, observability and long-term supportability.

Key Responsibilities

  • Refactor prototypes and vibe-coded applications into production-grade solutions with clean architecture, maintainable code, secure authentication, robust APIs and automated deployment pipelines.
  • Design, build and harden AI-enabled applications, including chatbots, RAG solutions, workflow assistants, agents, automation tools and AI-assisted business applications.
  • Work with product owners and business stakeholders to clarify use-case outcomes, user journeys, operational ownership, adoption metrics and production-readiness requirements.
  • Implement full-stack application capabilities across frontend, backend, APIs, data integration, authentication, authorization, logging and monitoring.
  • Integrate applications with approved AI services such as Azure OpenAI, Azure AI Foundry, Azure AI Search, Azure Machine Learning, Microsoft Graph, enterprise APIs and internal data sources.
  • Apply secure and responsible AI application patterns, including prompt management, retrieval grounding, input/output controls, human-in-the-loop design, auditability and content safety controls.
  • Develop reusable implementation patterns, starter templates and engineering playbooks for AI application delivery across common use cases.
  • Support production-readiness assessments covering security, privacy, data classification, model behaviour, observability, cost, support model and operational handover.
  • Build automated test suites for AI applications, including functional tests, regression tests, prompt evaluation, response quality checks and guardrail validation.
  • Implement observability for AI applications, including application logs, model usage, latency, token consumption, errors, user feedback, cost and key business metrics.
  • Collaborate with platform engineers to deploy AI applications using approved cloud patterns, CI/CD pipelines, containerisation, API Management, secrets management and monitoring baselines.
  • Document solution designs, operating procedures, reusable patterns, known limitations and support guides to ensure applications are maintainable after go-live.

Required Skills and Experience

  • 7+ years of hands-on software engineering experience, including experience building, deploying and supporting enterprise or cloud-native applications.
  • Strong full-stack engineering capability using modern frontend, backend and API development frameworks such as React, TypeScript, Node.js, Python, .NET, Java or equivalent technologies.
  • Hands-on experience designing and integrating REST APIs, backend services, databases, authentication mechanisms and enterprise application integrations.
  • Practical experience building AI-enabled applications using large language models, RAG patterns, prompt engineering, embeddings, vector search, agents, workflow automation or AI orchestration frameworks.
  • Working knowledge of Azure AI services such as Azure OpenAI, Azure AI Foundry, Azure AI Search, Azure Machine Learning, Azure App Service, Azure Container Apps, API Management, Key Vault, Azure Monitor and Log Analytics.
  • Experience applying secure software development practices, including input validation, secrets management, least-privilege access, dependency scanning, logging, error handling and secure configuration.
  • Experience with modern authentication and authorization standards, including OAuth 2.0, OpenID Connect, SAML, JWT, RBAC and enterprise identity integration using Microsoft Entra ID.
  • Hands-on experience with CI/CD pipelines using Azure DevOps, GitHub, GitHub Actions, ShipHATS or equivalent platforms.
  • Familiarity with containerisation, cloud deployment patterns, environment promotion, deployment rollback and production support practices.
  • Ability to assess prototype quality and determine what must be rebuilt, hardened, monitored or redesigned before production release.
  • Good understanding of AI risks, including hallucination, data leakage, prompt injection, unsafe tool use, policy bypass, privacy risks and poor explainability.
  • Strong documentation, communication and stakeholder management skills, with the ability to explain technical design choices and production trade-offs clearly.
  • Comfortable working in an agile, product-oriented environment where solutions are delivered iteratively and improved through user feedback, platform patterns and governance review.

Preferred Skills

  • Experience building chatbots, knowledge assistants, workflow agents, document intelligence solutions, recommendation assistants or AI-enabled internal tools.
  • Experience working with AI application frameworks such as LangChain, Semantic Kernel, LlamaIndex, AutoGen, CrewAI or equivalent orchestration tools.
  • Experience with vector databases or search technologies such as Azure AI Search, PostgreSQL with pgvector, Cosmos DB, Pinecone or similar platforms.
  • Experience with AI evaluation, prompt testing, red teaming, safety evaluations, grounding quality checks or responsible AI controls.
  • Experience integrating with Microsoft 365, SharePoint, Teams, Microsoft Graph, Power Platform or enterprise workflow systems.
  • Familiarity with public sector cloud environments, government security requirements, data classification, privacy and compliance obligations.
  • Exposure to observability, SRE practices, incident response, service health dashboards and production support models.
  • Experience using AI-assisted development tools such as GitHub Copilot, Microsoft Copilot, Claude, ChatGPT Enterprise or equivalent tools to improve engineering productivity, testing and documentation.
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