Technical Manager/ Data Project Manager
Skills
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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