Big Data Engineer (Cancer Science Institute)

National University of Singapore

Singapore

On-site

SGD 90,000 - 140,000

Full time

14 days+
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Job summary

The Cancer Science Institute of Singapore, part of the National University of Singapore, seeks a Big Data Engineer for the Genomics and Data Analytics Core (GeDaC). You will join a specialist team, handling data logistics, infrastructure, and scale in a petabyte-scale Data Nexus that underpins production AI for cancer research.

You will focus on data ingestion, IaC deployment (AWS), data governance, and hybrid cloud synchronization, ensuring reliable, scalable data pipelines and fast, queryable

Qualifications

  • Bachelor’s degree in Computer Science, Information Systems, Engineering, or related field.
  • 2+ years of Data Engineering/DevOps experience.
  • Experience with commercial cloud infrastructure (AWS preferred).

Responsibilities

  • Architect and maintain data ingestion pipelines and data logistics from sequencing instruments to hybrid storage.
  • Deploy and manage AWS resources using IaC (CloudFormation/Terraform) with DevSecOps practices.
  • Implement data governance, provenance, immutable audit logs, and automated access control policies.
  • Manage data synchronization between on-prem HPC and AWS storage tiers.
  • Coordinate with pipeline teams to stage data for Nextflow/Kubernetes processing.
  • Maintain metadata databases with low-latency access for the API layer.

Skills

Python
IaC
SQL/Datastore
Linux/Unix
Cloud/AWS

Education

Bachelor’s degree in CS/IS/Engineering

Tools

AWS CloudFormation
Terraform
Nextflow
Kubernetes

Job description

Big Data Engineer (Cancer Science Institute)

University-Level Unit: Cancer Science Institute of Singapore

Faculty/Department-Level Unit: Research

Employee Category: Research Staff

Location: Kent Ridge Campus

Posted On: 01/07/2026

Job Description

The Cancer Science Institute of Singapore – a part of National University of Singapore – is seeking a skilled Big Data Engineer to join the Genomics and Data Analytics Core (GeDaC). We are operating a petabyte-scale "Data Nexus" that serves as the foundation for a production AI Factory in cancer and human disease research.

You do not need a background in biology. We are looking for a pure engineer who understands data logistics, infrastructure, and scale.

The Team & Leadership

You will join a highly specialized technical team comprising an experienced Cloud/HPC Architect, an agile Full-Stack Developer, and a senior IT Manager.
Crucially, you will report to a Facility Head with deep, hands-on expertise in petabyte-scale data-intensive computing and DataOps. This ensures you will work in an environment where technical complexity is understood, architectural decisions are respected, and job scope is managed with engineering reality in mind.

Key Responsibilities
  • Data Ingestion & Logistics: Architect and maintain robust automation for ingesting raw data from sequencing instruments to our hybrid storage systems. You will own the "handshakes" that ensure data moves reliably from edge to cloud.
  • Infrastructure as Code (IaC): Manage and deploy AWS resources (S3, Lambda, DynamoDB, RDS) using AWS CloudFormation, ensuring our infrastructure is reproducible, version-controlled, and follows DevSecOps best practices.
  • Technical Compliance & Provenance: Implement the technical controls for data governance. This includes designing immutable audit logs, automated access control policies, and lineage tracking systems to satisfy regulatory requirements (no manual report writing required).
  • Hybrid Cloud Synchronization: Manage the lifecycle of data moving between on-premise HPC and AWS S3 Intelligent-Tiering/Glacier to balance high-performance availability with long‑term cost optimization.
  • Pipeline Integration: Work closely with the Senior HPC Engineer to ensure data is correctly staged for Nextflow/Kubernetes processing pipelines, and capture the outputs back into the data lake/warehouse.
  • Database Management: Maintain the SQL and NoSQL databases that serve as the "source of truth" for file metadata, ensuring the Full-Stack team has low‑latency API access to query file status.
Requirements

Education: Bachelor’s degree in Computer Science, Information Systems, Engineering, or a related field.
Experience:

  • 2+ years of experience in Data Engineering, Backend Development, or DevOps.
  • Demonstrable experience working with commercial cloud infrastructure (AWS preferred)

Technical Skills:

  • Core Logic: Strong proficiency in Python (data tooling, automation scripts).
  • Infrastructure: Experience with Infrastructure as Code (IaC) tools such as AWS CloudFormation and/or Terraform is essential.
  • Data Management: Proficiency with SQL (PostgreSQL/Aurora) and object storage (S3).
  • Environment: Beyond comfortable working in Linux/Unix environments.

Attributes:

  • Meticulous: You care deeply about data integrity. A missing file or a broken checksum bothers you.
  • Ownership-driven: You take responsibility for systems you build and operate.
  • Collaborative: You can work effectively within an established technical team, integrating your work with existing APIs and processing pipelines.

Preferred Experience

  • Experience with workflow managers like Nextflow or container orchestration via Kubernetes.
  • Experience with hybrid-cloud data transfer tools (e.g., AWS DataSync, Storage Gateway).
  • Knowledge of searching/indexing tools like Elasticsearch or OpenSearch.

Req ID: 31308

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