Data Engineer

Space Executive

Singapore

On-site

SGD 90,000 - 150,000

Full time

6 hours ago
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Job summary

Space Executive is seeking a Data Engineer in Singapore to design, build, and own data pipelines end-to-end—from ingestion to modeling to downstream consumption. You will work across batch and real-time systems, ensuring reliability, scalability, and data quality as core requirements.

You will apply AI/LLM tooling to accelerate development, monitoring, and domain ramp-up, collaborating with product, compliance, platform, and analytics teams to translate ambiguous needs into concrete tasks.

Qualifications

  • 4+ years of experience in data engineering with production pipeline experience (ETL/ELT, SQL, Python, orchestration tools like Airflow or equivalent).
  • Strong software engineering fundamentals — Java, Scala, or Python.
  • Experience with distributed data systems and large-scale storage/compute.
  • Demonstrated ability to own a data domain end-to-end.
  • Strong data modeling skills, with attention to auditability, lineage, and correctness.
  • Comfortable working in ambiguity — able to turn underspecified requirements into concrete engineering plans.
  • Fast learner, with evidence of ramping up quickly in unfamiliar domains.
  • Familiarity with LLM/AI tooling applied to data engineering is a strong plus

Responsibilities

  • Design, build, and maintain production-grade data pipelines (batch and/or real-time) across ingestion, transformation, and serving layers
  • Own end-to-end data domains — business logic, data quality, and incident handling — rather than just executing tickets
  • Build and maintain scalable distributed data infrastructure (e.g., Spark, Hadoop, Flink, or equivalent big data platforms)
  • Design proactive data quality checks, monitoring, and alerting to catch issues before they hit downstream systems
  • Apply AI/LLM tooling to accelerate pipeline development, documentation, and domain learning
  • Collaborate closely with cross-functional teams (product, compliance, platform, analytics) to translate ambiguous requirements into scoped engineering tasks
  • Contribute to platform reliability, cost efficiency, and operational excellence
  • Mentor junior engineers as your domain expertise grows

Skills

Data engineering
ETL/ELT
SQL
Python
Airflow
End-to-end ownership
Data modeling
Ambiguity tolerance
Rapid learning
LLM tooling
Distributed systems

Tools

Java
Scala
Python

Job description

Our client is a fast-growing, global fintech company operating at the intersection of technology and financial services. They are trusted by millions of users and institutions worldwide, and are known for a strong engineering culture built on ownership, speed, and doing the right thing.

About the Role

We're looking for a Data Engineer to help design, build, and own critical data pipelines and platform capabilities that power the business. You'll work end-to-end — from ingestion through modeling to downstream consumption — with reliability, scalability, and data quality as first-class requirements. You'll also have the opportunity to apply modern AI/LLM tooling to accelerate development, monitoring, and domain ramp-up.

What You'll Be Doing
  • Design, build, and maintain production-grade data pipelines (batch and/or real-time) across ingestion, transformation, and serving layers
  • Own end-to-end data domains — business logic, data quality, and incident handling — rather than just executing tickets
  • Build and maintain scalable distributed data infrastructure (e.g., Spark, Hadoop, Flink, or equivalent big data platforms)
  • Design proactive data quality checks, monitoring, and alerting to catch issues before they hit downstream systems
  • Apply AI/LLM tooling to accelerate pipeline development, documentation, and domain learning
  • Collaborate closely with cross-functional teams (product, compliance, platform, analytics) to translate ambiguous requirements into scoped engineering tasks
  • Contribute to platform reliability, cost efficiency, and operational excellence
  • Mentor junior engineers as your domain expertise grows
What We Look For In You
  • 4+ years of experience in data engineering with strong production pipeline experience (ETL/ELT, SQL, Python, orchestration tools like Airflow or equivalent)
  • Strong software engineering fundamentals — Java, Scala, or Python
  • Experience with distributed data systems and large-scale storage/compute
  • Demonstrated ability to own a data domain end-to-end
  • Strong data modeling skills, with attention to auditability, lineage, and correctness
  • Comfortable working in ambiguity — able to turn underspecified requirements into concrete engineering plans
  • Fast learner, with evidence of ramping up quickly in unfamiliar domains
  • Familiarity with LLM/AI tooling applied to data engineering is a strong plus

Technology | GTM | Mid-Senior Level

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