AI Engineer, Data Infra

Nanyang Technological University

Região Norte

Presencial

BRL 487 000 - 730 000

Tempo integral

Há 2 dias
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Resumo da oferta

NTU's AI Singapore invites an AI Engineer to join the Platform team within AI Products. You will design, build, and scale data infrastructure powering LLM training, fine-tuning, evaluation, and RAG across the organisation. This role focuses on architecture, reliability, and scalable compute for large-scale AI workloads.

You will balance platform ownership with product usability, contributing to data pipelines, governance, and tooling that researchers and engineers rely on daily.

Qualificações

  • Bachelor's degree in Computer Science, Information Technology, or equivalent.
  • At least 2–4 years of data infrastructure, platform or systems engineering experience, with a track record of operating production systems at scale.
  • Strong knowledge of distributed data systems and storage technologies (object storage, data lakes, distributed file systems, vector databases) and data pipelining tools (e.g. Apache Spark, Apache Airflow, Ray, Dagster).
  • Working knowledge of data access control and data orchestration.
  • Familiarity with cloud organisational structures (e.g. AWS Organizations, GCP folder/project hierarchy), including multi-account/multi-project setups, org-level IAM, and billing/cost allocation.
  • Hands-on experience operating workloads on different cloud providers including IaC (e.g. Terraform), containers and orchestration (e.g. Docker, Kubernetes), and managed services for compute, storage, and networking.
  • Demonstrated use of AI tools (e.g. Claude, Copilot, Cursor) in your day-to-day engineering — for code generation, review, debugging, and documentation — with a clear sense of where they help and where they don't.
  • Solid scripting/programming skills (e.g. Python, SQL) and comfortable reading other people's code across the stack.
  • Strong communication skills and a team collaborator.

Responsabilidades

  • Develop and maintain the overall data architecture to support AI training, fine-tuning, evaluation, and RAG workloads.
  • Define and manage the data technology stack, evaluating and adopting tools that best fit evolving data needs.
  • Build automation for data transfer and backup, and support data cataloging/discovery tools.
  • Design and maintain data pipelines (batch and streaming) using tools like AWS Glue and Amazon EMR.
  • Architect and govern org-level IAM policy across AWS Organizations including SCPs, cross-account roles, and permission boundaries.
  • Review and enhance data access patterns for performance and cost optimization.
  • Develop and manage data analytics and dashboarding capabilities using tools like Amazon Athena and QuickSight.
  • Use AI tools (e.g. Claude, Copilot, Cursor) appropriately in daily work responsibilities.
  • Build internal tools leveraging AI to reduce manual effort in day-to-day operations.

Conhecimentos

Data infrastructure
Distributed data systems
Cloud platforms
IaC Terraform
Docker Kubernetes
Python SQL
Automation scripting
Communication collaboration

Formação académica

Bachelor's degree in Computer Science or equivalent

Ferramentas

AWS Glue
Amazon EMR
Apache Spark
Apache Airflow
Ray
Dagster
Terraform
Docker
Kubernetes
AWS IAM / Organizations
Amazon Athena
QuickSight

Descrição da oferta de emprego

AI Singapore (AISG) is a national AI programme launched by the National Research Foundation (NRF), Singapore, to build and anchor deep national capabilities in AI. AISG is supported through a government-wide partnership including the NRF, Ministry of Digital Development and Information (MDDI), Infocomm Media Development Authority (IMDA), Economic Development Board (EDB) and Enterprise Singapore (ESG). We bring together research institutions and the vibrant ecosystem of AI start-ups and companies to support impactful research, develop talent, and power Singapore's AI efforts.

This position will be hosted at Nanyang Technological University (NTU) under VP (Artificial Intelligence & Digital Economy)’s office and we welcome you to join our community.

We're looking for an AI Engineer to join the Platform team within AI Products at AISG. In this role, you will design, build, and scale the data infrastructure that powers large language model (LLM) training, fine-tuning, evaluation, and retrieval-augmented generation (RAG) across the organisation. Your work will directly contribute to the architecture and reliability of data storage systems, data pipelines, and the compute infrastructure that supports large-scale AI workloads.

Responsibilities:
Data infrastructure and architecture
  • Develop and maintain the overall data architecture, ensuring it scales to support AI training, fine-tuning, evaluation, and RAG workloads.

  • Define and manage the data technology stack, evaluating and adopting tools that best fit evolving data needs.

  • Build automation for data transfer and backup, and support data cataloging/discovery tools.

  • Design and maintain data pipelines (batch and streaming) using tools like AWS Glue and Amazon EMR.

Data governance and management
  • Architect and govern org-level IAM policy across AWS Organizations including SCPs, cross-account roles, and permission boundaries to enforce least-privilege access at scale.

  • Review and enhance data access patterns for performance and cost optimization.

  • Develop and manage data analytics and dashboarding capabilities using tools like Amazon Athena and QuickSight to give stakeholders visibility into platform usage and cost.

AI-assisted ops and continuous improvement
  • Use AI tools (e.g. Claude, Copilot, Cursor) appropriately in your daily work responsibilities.

  • Build internal tools leveraging AI to reduce manual effort in day-to-day operations.

Requirements:

You should be a hands-on engineer who enjoys both building robust infrastructure and designing tools that other engineers and researchers want to use. You should be comfortable balancing platform ownership (architecture, cost, governance) with product thinking (usability, self-service, adoption).

  • A degree in Computer Science, Information Technology, or equivalent.

  • At least 2–4 years of data infrastructure, platform or systems engineering experience, with a track record of operating production systems at scale.

  • Strong knowledge of distributed data systems and storage technologies (object storage, data lakes, distributed file systems, vector databases) and data pipelining tools (e.g. Apache Spark, Apache Airflow, Ray, Dagster).

  • Working knowledge of data access control and data orchestration.

  • Familiarity with cloud organisational structures (e.g. AWS Organizations, GCP folder/project hierarchy), including multi-account/multi-project setups, org-level IAM, and billing/cost allocation.

  • Hands-on experience operating workloads on different cloud providers including IaC (e.g. Terraform), containers and orchestration (e.g. Docker, Kubernetes), and managed services for compute, storage, and networking.

  • Demonstrated use of AI tools (e.g. Claude, Copilot, Cursor) in your day-to-day engineering — for code generation, review, debugging, and documentation — with a clear sense of where they help and where they don't.

  • Solid scripting/programming skills (e.g. Python, SQL) and comfortable reading other people's code across the stack.

  • Strong communication skills and a team collaborator.

Good to Have:
  • Experience with LLM training dataset (e.g. Common Crawl).

  • C/C++/Rust/Go or other relevant programming languages.

  • Contributions to open-source AI/ML projects.

We regret that only shortlisted candidates will be notified.

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