Technical Manager/ Data Project Manager
Unison Group · Singapore
About The Role
Lead and manage large-scale Data Engineering and Data Modernization projects .Hands-on experience in managing Data projects end-to-end — effort estimation, scoping, project plan, timelines, team allocation, stakeholder management
Drive end-to-end delivery of Data Lake build and migration initiatives .Hands-on experience with modern Data technologies like PySpark, SQL, CML, Python on any cloud; preferred GCP
Lead PySpark migration and optimization projects , ensuring performance and scalability. Transform business requirements into Data solutions, manage risks, issues and dependencies
Design and implement modern data architectures, including Data Lakes, Data Warehouses, and Lakehouse solutions .
Collaborate with business stakeholders, architects, and engineering teams to define data strategies and roadmaps.
Provide technical leadership and mentorship to Data Engineers and Developers.
Ensure best practices around
- Data governance
- Data quality
- Security and compliance
- Performance optimization
- Lead data platform modernization initiatives across cloud environments.
- Review solution designs, architecture documents, and implementation approaches.
- Manage project planning, resource allocation, risks, and delivery timelines.
- Drive Agile delivery and ensure successful project execution.
Requirements
- Hands-on experience in managing Data projects end-to-end — effort estimation, scoping, project plan, timelines, team allocation, stakeholder management
- Hands-on experience with modern Data technologies like PySpark, SQL, CML, Python on any cloud; preferred GCP
- Transform business requirements into Data solutions, manage risks, issues and dependencies
- Proven experience in delivering:
- Data Lake implementation projects
- Data Lake migration programs
- PySpark migration projects
- Large-scale data transformation initiatives
Technical Skills
- Strong expertise in:
- Python
- PySpark
- Spark SQL
- SQL
- ETL/ELT frameworks
- Experience with:
- Hadoop ecosystem
- Data Lakes and Lakehouse architectures
- Distributed data processing frameworks
- Strong understanding of:
- Data modeling
- Data integration patterns
- Batch and real-time processing
- Experience with cloud platforms such as:
- AWS
- Azure
- GCP
- Hands-on experience with:
- Data migration strategies
- Performance tuning and optimisation
- CI/CD and DevOps practices for data platforms
Preferred Skills
- Experience with:
- Databricks
- Delta Lake
- Apache Airflow
- Kafka
- Snowflake
- Kubernetes and Docker
- Experience in Banking, Financial Services, or other large enterprise environments.
- Exposure to data governance and data quality frameworks.
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