Applied AI Engineer (Agentic AI & ML)

FLINTEX CONSULTING PTE. LTD.

Singapore

On-site

SGD 75,000 - 100,000

Full time

14 days+

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Job summary

FLINTEX CONSULTING PTE. LTD. in Singapore is seeking an Applied AI Engineer to develop and implement AI solutions in collaboration with business units and operations teams. This role demands hands-on engineering skill and a deep understanding of machine learning principles, focusing on delivering impactful AI solutions.

Candidates should be comfortable working with operators to identify AI opportunities and hold responsibility for the reliability and performance of the systems they create, with a strong foundation in Microsoft Azure and a focus on continuous improvement.

Qualifications

  • Hands-on experience building, training, and deploying ML/DL models in production.
  • Proficiency in Microsoft Azure, including Azure OpenAI and related services.
  • Experience with LLMs and agentic AI workflows.

Responsibilities

  • Identify high-value AI use cases with business and operations stakeholders.
  • Design production-grade AI solutions using LLMs and prompt engineering.
  • Maintain and improve ML/DL models based on evolving data.

Skills

Building ML/DL models
Prompt engineering
Production-ready AI systems
REST API design
Microsoft Azure

Tools

NodeJS
Python
Docker

Job description

Role Overview

We are seeking a Applied AI Engineer to embed directly with our business units and thermal-asset operations teams and own AI solutions end-to-end — from problem discovery through production. This is a builder's role, not an advisory one: you will sit with operators and domain experts, scope where AI can remove real cost or risk, write the production code, deploy it, and stay accountable for it running reliably.

The role combines two demands that rarely sit together: a strong machine-learning foundation (you will maintain and improve models that run our assets) and hands-on agentic AI engineering. The ideal candidate is delivery-oriented, comfortable with ambiguity, and motivated by business impact over benchmarks.

Key Responsibilities
Discover & scope
  • Embed with business and operations stakeholders to identify high-value AI use cases and decompose ambiguous problems into deliverable solutions
Build agentic AI systems
  • Design and build production-grade agentic AI solutions using LLMs, prompt engineering, RAG, and tool/function calling
  • Architect multi-agent workflows and agent orchestration, including MCP (Model Context Protocol) servers, sub-agents, and custom integrations into enterprise systems
  • Build secure, scalable backend APIs and services (C# / .NET) to support AI workloads
Maintain & enhance ML/DL models
  • Own, maintain, and improve production ML/DL models
  • Retrain, evaluate, and tune models as data and operating conditions evolve
Deploy & operate in production
  • Deploy and operate applications and models on Microsoft Azure/GCP behind production auth, logging, and monitoring
  • Build evaluation frameworks, guardrails, and observability for non-deterministic AI systems; own reliability, performance, cost, and security
  • Implement CI/CD pipelines and follow DevOps best practices
Additional Responsibilities
  • Codify & feed back
  • Turn bespoke builds into reusable, repeatable internal patterns and components
  • Route field learnings back into platform, tooling, and roadmap decisions
Required Skills
Machine Learning / Deep Learning (mandatory)
  • Demonstrated hands-on experience building, training, evaluating, and deploying ML/DL models in production
  • Solid ML fundamentals: evaluation, training, problem decomposition
  • Experience with forecasting, predictive maintenance, or time-series modelling is strongly preferred
Applied & Agentic AI (mandatory)
  • Hands‑on experience with LLMs and prompt engineering
  • Experience building agentic AI workflows and agent orchestration
  • Working knowledge of MCP, RAG, vector databases, and LLM orchestration frameworks
  • Understanding of production AI challenges: evals, guardrails, hallucination/quality control, model drift, observability
Backend
  • NodeJS
  • Python
  • MCP
  • REST API design and integration
Cloud & DevOps
  • Microsoft Azure proficiency (mandatory) — App Services, Azure OpenAI, Functions, Storage, etc.
  • Azure DevOps CI/C
  • Docker (AKS is a plus)
Good to Have
  • Google Cloud Platform (GCP)
  • Full‑stack development experience (frontend + backend)
  • Frontend skills (React, Flutter)
  • Python or Node.js for AI/ML orchestration
  • Experience integrating AI into enterprise/industrial or operational technology systems
  • Exposure to AI‑assisted development tools and workflows
  • Background in energy, utilities, or asset‑heavy industries
Mindset & Soft Skills
  • Strong ownership: takes a problem from ambiguity to production and stays accountable for the outcome
  • Translates business and operational problems into practical AI/ML solutions
  • Comfortable working embedded with technical and non-technical stakeholders
  • Clear communicator across engineering, operations, and business audiences
  • Thrives in a dynamic environment with evolving objectives and direct user iteration
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