Lead Data Engineer (Singapore, Singapore)

Singtel

Singapore

On-site

Confidential

Full time

14 days+
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Job summary

Singtel seeks an senior data platform architect to lead enterprise-scale data platforms for AI and advanced analytics. You will define reusable data products, establish platform services, and drive DataOps with automated testing, observability, and CI/CD across cloud-native and on‑prem environments.

You will guide ingestion, transformation and serving of structured and streaming data, ensuring quality, security and governance while partnering with product and enterprise stakeholders to build a

Qualifications

  • Bachelor's degree or equivalent practical experience in a technical discipline.
  • 8+ years in data engineering, software or data platform engineering with leadership.
  • Strong Python and SQL; Java/Scala knowledge is a plus.
  • Experience with Spark, Kafka, and Flink for distributed processing.
  • Design cloud-native data platforms and lakehouse/warehouse tech.
  • Hands-on with Kubernetes, Docker, and Terraform for CI/CD and IaC.
  • Knowledge of data modelling, quality, lineage, security and governance.
  • Clear communication of architecture decisions to engineers and leaders.

Responsibilities

  • Lead architecture and evolution of enterprise-scale data platforms for AI and analytics.
  • Create reusable data products and platform services to accelerate delivery.
  • Advance DataOps through automated testing, observability, and CI/CD.
  • Ensure data quality, lineage, metadata, security and governance by design.
  • Own technical architecture for batch, streaming, and event-driven processing.
  • Design scalable ingestion, transformation, orchestration and serving patterns.
  • Define standards, reference architectures and reusable design patterns.
  • Support AI/GenAI workloads with production-grade data pipelines.
  • Coach engineers and promote ownership, reuse and continuous improvement.
  • Collaborate with product, network, AI and enterprise stakeholders on roadmaps.

Skills

Python
SQL
Java/Scala
Apache Spark
Kafka
Flink
Kubernetes
Docker
Terraform
Data modelling
Data governance
Data quality
Security & compliance
Stakeholder communication

Education

Bachelor's degree in Computer Science, Data Engineering or related field

Tools

Terraform
Kubernetes
Docker
Cloud platforms

Job description

We're building an AI-first telco for the future - connecting people, businesses and communities through trusted networks, intelligent digital services and next-generation technology.

From transforming everyday experiences in mobile, broadband, entertainment and lifestyle services to enabling enterprises with AI, 5G+, cloud, cybersecurity, data centres and digital platforms, we create the technology that powers how millions live, work and connect.

At Singtel, your work creates real impact. You'll solve meaningful challenges, shape critical digital infrastructure and help build secure, resilient and AI-enabled solutions that serve businesses, digital ecosystems and communities across the globe.

This is where BIG Possibilities become reality. Whether you're engineering intelligent networks, advancing sovereign AI cloud platforms, strengthening cybersecurity, designing seamless customer experiences or driving sustainable innovation, you'll be part of teams shaping the future of technology.

Backed by decades of expertise and driven by a culture of continuous learning and innovation, Singtel offers the scale, opportunities and support to help you grow your career while making a difference where it matters most.

How You will Make An Impact:
  • Lead the architecture and evolution of enterprise-scale data platforms for AI, advanced analytics and Autonomous Network use cases.
  • Establish reusable data products and platform services that reduce one-off integrations and accelerate delivery across teams.
  • Raise engineering maturity through DataOps, automated testing, observability, CI/CD, infrastructure-as-code and AI-assisted engineering practices.
  • Strengthen trust in enterprise data through data quality, lineage, metadata, security and governance-by-design.
  • Own the technical architecture for batch, streaming and event-driven data processing across cloud-native and on-premise environments.
  • Design and lead implementation of scalable data ingestion, transformation, orchestration and serving patterns for structured, semi-structured and streaming data.
  • Define engineering standards, reference architectures, reusable frameworks and design patterns for data products and platform services.
  • Enable AI and GenAI workloads through production-grade datasets, feature pipelines, retrieval data flows, vector stores and related data services where appropriate.
  • Drive DataOps practices including automated testing, deployment, monitoring, lineage, data quality checks and operational observability.
  • Lead architecture and code reviews, resolve complex engineering trade-offs, and guide teams on performance, resilience, security and cost optimisation.
  • Partner with product, network, AI and enterprise architecture stakeholders to translate strategic outcomes into an executable data platform roadmap.
  • Evaluate emerging technologies and recommend adoption based on measurable value, interoperability, operational fit and total cost of ownership.
  • Coach and mentor engineers, build technical capability and promote a strong engineering culture focused on ownership, reuse and continuous improvement.
Skills for Success:
  • Bachelor's degree in Computer Science, Data Engineering, Software Engineering or a related technical discipline, or equivalent practical experience.
  • Min 8 years of relevant experience in data engineering, software engineering or data platform engineering, including substantial experience leading solution design or technical delivery.
  • Strong proficiency in Python and SQL; working knowledge of Java and/or Scala is beneficial.
  • Strong experience with distributed data processing and streaming technologies such as Apache Spark, Kafka and/or Flink.
  • Experience designing cloud-native data platforms using one or more major cloud ecosystems and modern lakehouse/data warehouse technologies.
  • Hands-on experience with container platforms, CI/CD and infrastructure-as-code, for example Kubernetes, Docker and Terraform.
  • Strong understanding of data modelling, data quality, metadata, lineage, security and governance principles.
  • Ability to communicate architecture decisions clearly to engineering teams and senior stakeholders, and to influence across organisational boundaries.
Are you ready to say hello to BIG Possibilities?
Join Singtel to shape what's next and accelerate your career through meaningful work, continuous learning, and real impact.
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