#EG AI Solution Architect

NCS Group

Singapore

On-site

SGD 80,000 - 120,000

Full time

14 days+

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Job summary

NCS Group in Singapore seeks an experienced AI Solution Architect to lead GenAI project delivery. This role involves translating business requirements into GenAI solutions, ensuring effective collaboration with product and engineering teams.

The ideal candidate has over 5 years in solution architecture and has successfully shipped GenAI solutions. Strong familiarity with AI frameworks and platforms is essential for success in this position.

Qualifications

  • 5+ years in solution architecture, AI engineering, or hands-on software/platform roles.
  • 2+ years delivering production GenAI solutions.
  • Comfortable consuming platform building blocks.

Responsibilities

  • Own the GenAI solution architecture for your AI project.
  • Translate business needs into end-to-end designs.
  • Work closely with product, engineering, and delivery teams.

Skills

GenAI solution design
End-to-end solution architecture
Working with platforms
Collaborative
Customer orientation

Tools

LangChain
LangGraph
LlamaIndex
Kubernetes
OpenShift

Job description

Job Description

NCS is a leading AI Tech Services company. With a 15,000-strong team across the Asia Pacific, NCS scales its platforms and capabilities to provide clients with greater agility and AI expertise across a range of Industries. Embracing a strong ecosystem of global partners, NCS transforms technology services delivery combining AI with digital resilience to drive real business impact. NCS is a subsidiary of the Singtel Group.

About the role context

This role sits embedded inside an AI project — a GenAI initiative within the organisation responsible for delivering business outcomes through AI applications. Each AI project has its own business problems, its own stakeholders, and its own delivery team. Rather than building GenAI capability from scratch, AI projects assemble their solutions on top of common services, building blocks, and reference architecture provided by a central platform team. As the AI Solution Architect for the project, you are the bridge between the business need and a production GenAI solution that uses those shared platform capabilities effectively.

The role

In this role, you are the AI Solution Architect for one or more AI projects. You translate business and product requirements into actual GenAI solution designs, leveraging the common services, building blocks, and reference architecture provided by the central platform team.

You work closely with a platform engagement counterpart — typically a Solution Architect from the central platform team — who helps you apply the platform to your context. You also work hand‑in‑hand with the project's product, engineering, and delivery teams who turn your designs into production systems.

You are a delivery‑focused architect. You prefer shipping over standardising; you consume the platform rather than build it; and your success is measured in working solutions for your AI project.

Key Responsibilities
  • Own the GenAI solution architecture for your AI project — translating business and product needs into end‑to‑end designs.
  • Apply the central platform's reference architecture and consume its common services and building blocks; minimise one‑off custom work.
  • Work hand‑in‑hand with the platform engagement counterpart to ensure designs leverage the platform effectively, and to surface needs that should become platform features.
  • Partner with the AI project's product, engineering, and delivery teams to take designs to production.
  • Make pragmatic trade‑offs between time‑to‑value and architectural quality.
  • Stay close to the business — understand the use case, the users, and what "good" looks like for your AI project.
Technical environment

Across all roles, you will be working with — or designing for — the following stack. You do not need every item listed; you should be familiar with most and able to learn the rest.

  • LLM providers: Commercial LLM APIs and self‑hosted open‑weight models served via vLLM / LLM‑d.
  • Agent frameworks: LangChain, LangGraph, LlamaIndex.
  • Retrieval: Milvus and Graph DB, with a custom‑built ingestion and retrieval framework on top.
  • Orchestration and harness: Custom‑built harness using Skills, eval loops, prompt and context engineering, and multi‑agent orchestration on a service mesh.
  • Runtime: Containerised applications on OpenShift; multi‑cloud Kubernetes (AKS, EKS) deployed via GitOps and ArgoCD.
  • Guardrails: Custom guardrails plus F5 AI Guardrails, Presidio (PII redaction), and OpenTelemetry plugins.
  • MLOps: Lightweight, focused on LLM fine‑tuning and embedding model lifecycle. (No deep / classical ML.)
  • Observability: OpenTelemetry, Grafana, Prometheus, Loki, Tempo.
How We Work
  • Governance by default: Compliance, security, and guardrails are inherited from the platform, not bolted on per project.
  • Apps lead, infra supports: GenAI is mostly application‑layer work with infrastructure underneath. We expect everyone to be apps‑strong and infra‑literate.
  • Telco context: We operate in a telco environment. Telco domain experience is a plus across all roles, not mandatory.
Qualifications

Required qualified and experience:

  • 5+ years in solution architecture, AI engineering, or hands‑on software / platform roles.
  • 2+ years of hands‑on experience designing or delivering production GenAI solutions.
  • Has shipped at least one GenAI solution end‑to‑end to real users.
  • Comfortable consuming someone else's platform / building blocks rather than building from scratch.
Required Skills And Knowledge
GenAI solution design (must have, deep)
  • Agentic systems, RAG, prompt and context engineering — at the level of designing real solutions, not just prototypes.
  • Choosing between agent vs. workflow patterns; designing memory and context strategies.
  • Eval design for production GenAI.
  • Familiarity with LangChain, LangGraph, LlamaIndex (or equivalents).
End‑to‑end solution architecture (must have, working depth)
  • Apps‑heavy with enough infrastructure literacy to assemble end‑to‑end designs that run in production.
  • Comfortable with Kubernetes‑based deployments, integration patterns, and observability.
  • Working knowledge of guardrails, PII redaction, and security considerations for GenAI in production.
Working with platforms
  • Demonstrated ability to consume reusable building blocks rather than build everything from scratch.
  • Comfortable giving structured feedback to a platform team to improve common services.
Key competencies and attributes
  • Pragmatic delivery architect — shipping is a feature.
  • Strong customer and stakeholder orientation; understands the business behind the AI project.
  • Collaborative — works closely with the platform engagement counterpart and the AI project delivery team.
  • Comfortable with ambiguity; happy to iterate from prototype to production.
Nice to have
  • Telco domain experience (strong plus).
  • Prior experience embedded in a business unit or product team.
  • Familiarity with the platform stack: LangChain, LangGraph, LlamaIndex, Milvus, OpenShift / Kubernetes, vLLM.
Additional Information

We are driven by our AEIOU beliefs—Adventure, Excellence, Integrity, Ownership, and Unity—and we seek individuals who embody these values in both their professional and personal lives. We are committed to our Impact: Valuing our clients, Growing our people, and Creating our future.

Together, we make the extraordinary happen.

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