Data Engineer
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Job Description
Data Engineering & Architecture Design, develop, and maintain scalable, high-performance data pipelines Work extensively with Azure Data Factory and Microsoft Fabric Build robust ETL/ELT frameworks using Python Design and optimize Lakehouse / Data Warehouse architectures Handle large-scale datasets efficiently (high volume and throughput) Write and optimize complex SQL queries for performance and reliability Integrate data from multiple sources including APIs, transactional systems, and external platforms Leadership & Delivery (Hands-on) Lead and mentor a team of data engineers while remaining actively involved in coding and solution design Perform hands-on development for critical pipelines, complex transformations, and performance optimisation. Conduct code reviews and enforce best practices, design patterns, and coding standards Act as the technical owner for data engineering deliverables Quality, Performance & Reliability Implement data quality checks, validations, and monitoring Optimize pipelines for performance, scalability, and cost Ensure reliability, fault tolerance, and error handling in production systems Follow data security, access control, and compliance best practices Lead troubleshooting, root-cause analysis, and production issue resolution Collaboration & Continuous Improvement Work closely with BI, analytics, product, and business teams Translate business
requirements
into scalable technical solutions Stay up to date with modern data engineering tools, technologies, and techniques Proactively suggest architectural and process improvement
Requirements
3-6 years of
experience
in the Data Engineering field. Strong hands-on
experience
in Python for data engineering, including building and maintaining production-grade, large-scale data pipelines Advanced
experience
with Azure Data Factory and Azure-based data platforms for orchestration, integration, and scalable data processing Working
experience
with Microsoft Fabric, including Lakehouse and data engineering workloads, along with a strong understanding of ETL/ELT and data warehousing concepts Expert-level SQL
skills
covering complex query development, optimization, indexing, and partitioning for high-performance systems Proven
experience
handling large-volume, high-throughput data and distributed processing environment.
Experience
with analytics and visualization platforms such as Power BI Knowledge of Delta Lake, Spark, and distributed data processing frameworks
Experience
implementing CI/CD practices for data pipelines and data engineering workflows Exposure to data governance, lineage, metadata management, and compliance-driven environments such as fintech or high-transaction systems Hands-on leadership mindset with strong ownership and accountability for outcomes Ability to mentor, guide, and grow junior engineers while leading by example Clear and effective communication with technical and non-technical stakeholders Strong problem-solving, analytical reasoning, and decision-making
skills
Benefits
Working hours: 10:00 AM – 7:00 PM Working days: 5 days a week (plus 1st & 3rd Saturdays working) Medical Insurance coverage for employees Provident Fund (PF) facility Quarterly parties and yearly outings/trips for team bonding Regular check-ins with leadership for growth and feedback Recognition awards to celebrate high performance Fun activities and team engagement sessions throughout the year
Key Requirements & Skills
into scalable technical solutions Stay up to date with modern data engineering tools, technologies, and techniques Proactively suggest architectural and process improvement
Requirements
3-6 years of
experience
in the Data Engineering field. Strong hands-on
experience
in Python for data engineering, including building and maintaining production-grade, large-scale data pipelines Advanced
experience
with Azure Data Factory and Azure-based data platforms for orchestration, integration, and scalable data processing Working
experience
with Microsoft Fabric, including Lakehouse and data engineering workloads, along with a strong understanding of ETL/ELT and data warehousing concepts Expert-level SQL
skills
covering complex query development, optimization, indexing, and partitioning for high-performance systems Proven
experience
handling large-volume, high-throughput data and distributed processing environment.
Experience
with analytics and visualization platforms such as Power BI Knowledge of Delta Lake, Spark, and distributed data processing frameworks
Experience
implementing CI/CD practices for data pipelines and data engineering workflows Exposure to data governance, lineage, metadata management, and compliance-driven environments such as fintech or high-transaction systems Hands-on leadership mindset with strong ownership and accountability for outcomes Ability to mentor, guide, and grow junior engineers while leading by example Clear and effective communication with technical and non-technical stakeholders Strong problem-solving, analytical reasoning, and decision-making
skills
Benefits
Working hours: 10:00 AM – 7:00 PM Working days: 5 days a week (plus 1st & 3rd Sat
Benefits & Perks
Working hours: 10:00 AM – 7:00 PM Working days: 5 days a week (plus 1st & 3rd Saturdays working) Medical Insurance coverage for employees Provident Fund (PF) facility Quarterly parties and yearly outings/trips for team bonding Regular check-ins with leadership for growth and feedback Recognition awards to celebrate high performance Fun activities and team engagement sessions throughout the year
Frequently Asked Questions
How to apply for Data Engineer at ScaleUp Ally?
Click the "Apply via CareerScan" button on this page.
What is the salary for this role?
Salary details will be discussed during the interview.
What experience is required?
Senior of experience is required.
Is this position still open?
Yes, currently active and accepting applications.
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