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Protolabs
Hyderabad
Source: Protolabs careers · View original posting
From Protolabs's posting. “We” and “our” refer to the employer.
Join the team as our new Analytics Engineer (Quality) – India
You will be responsible for building and evolving the frameworks that ensure trust, reliability, and accuracy across our modern data platform. Working closely with Analytics Engineers, Data Engineers, and Data Analysts, you will design intelligent data quality, testing, monitoring, and alerting frameworks that protect critical business processes and KPIs while enabling scalable and reliable data products.
4+ years of experience in Analytics Engineering, Data Analytics, Data Quality, or a related data-focused role.
Strong SQL skills and experience working with analytical datasets and data models.
Strong analytical and statistical mindset, with the ability to identify patterns, anomalies, and data quality risks.
Strong understanding of business processes, KPIs, and the impact of data quality issues on business outcomes.
Experience designing and implementing data quality controls, monitoring frameworks, validation processes, and source freshness checks.
Experience embedding automated testing, validation, and quality controls into CI/CD and development workflows.
Experience performing root cause analysis across complex data pipelines and systems.
Hands-on experience with dbt, SQLMesh, or similar SQL-based transformation tools.
Experience working with modern data platforms and cloud data warehouses is preferred.
Leadership & Collaboration
Experience working closely with Analytics Engineers, Data Engineers, Data Analysts, and cross-functional stakeholders.
Strong communication and stakeholder management skills, with the ability to translate technical data quality issues into business impact.
Ability to influence teams and drive consistent adoption of data quality standards and best practices.
Strong problem-solving skills with a structured and pragmatic approach to investigating data quality issues.
Ability to balance technical quality requirements with operational priorities and business impact.
Mindset
Quality-focused mindset with a strong commitment to data reliability, accuracy, and trust.
Pragmatic approach to problem solving, recognising that not every data issue carries the same level of business impact.
Analytical and curious approach to identifying patterns, anomalies, and underlying causes.
Continuous improvement mindset with a focus on automation, scalability, and operational excellence.
Strong sense of ownership for the reliability and trustworthiness of data products.
Collaborative mindset with a passion for enabling teams to adopt better data quality and reliability practices.
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