Cloud Data Engineer: PySpark, AWS Glue & Lambda

RAPSYS TECHNOLOGIES PTE. LTD.

Singapore

On-site

SGD 120,000 - 180,000

Full time

14 days+

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Job summary

RAPSYS TECHNOLOGIES PTE. LTD. is seeking an experienced data engineer to design and maintain scalable data pipelines on AWS, using PySpark and Python.

You will build ETL/ELT workflows with AWS Glue and Step Functions, develop serverless automation with Lambda, and manage infrastructure with Terraform. You will implement CI/CD pipelines, monitor pipelines with CloudWatch, and ensure performance, cost efficiency, and security.

Qualifications

  • Hands-on experience with PySpark and Python for data engineering.
  • Experience developing ETL pipelines using AWS Glue.
  • Proficiency with AWS Step Functions for workflow orchestration.
  • Serverless solutions with AWS Lambda.
  • Terraform IaC experience.
  • CI/CD pipelines using GitLab, GitHub Actions, Jenkins or similar.
  • Knowledge of AWS services, data lakes, IAM, S3, CloudWatch and monitoring.

Responsibilities

  • Design, develop, and maintain scalable data pipelines using PySpark on AWS.
  • Build and orchestrate ETL/ELT workflows using AWS Glue and AWS Step Functions.
  • Develop serverless applications and automation using AWS Lambda.
  • Write clean, efficient Python/PySpark code following engineering best practices.
  • Provision and manage cloud infrastructure using Terraform (IaC).
  • Implement and maintain CI/CD pipelines to automate code deployment, testing, and infrastructure changes.
  • Monitor, troubleshoot, and optimize data pipelines for performance, reliability, and cost efficiency.
  • Collaborate with business stakeholders to deliver data solutions.
  • Follow DevOps, security, and coding standards throughout the engagement.

Skills

PySpark
Python

Tools

AWS Glue
AWS Step Functions
AWS Lambda
Terraform
CI/CD pipelines tooling
GitLab/GitHub Actions/Jenkins
CloudWatch
IAM
S3
Data Lakes

Job description

RAPSYS TECHNOLOGIES PTE. LTD. is seeking an experienced data engineer to design and maintain scalable data pipelines on AWS, using PySpark and Python.

You will build ETL/ELT workflows with AWS Glue and Step Functions, develop serverless automation with Lambda, and manage infrastructure with Terraform. You will implement CI/CD pipelines, monitor pipelines with CloudWatch, and ensure performance, cost efficiency, and security.

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