Live opening · Posted 18 days ago
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About the role
Description supplied by the original job listing.
Responsibilities:
Develop a long-term database management plan, including architecture to support multi-tenancy and infrastructure scaling.
Monitor database health, and storage growth, and predict potential performance issues.
Conduct query cost analysis and optimize performance.
Collaborate with DB Managed Services vendors to identify and mitigate performance issues.
Work with AWS for regular database operational and performance reviews.
Develop and maintain BigBasket-specific database standards and ensure compliance.
Analyze and optimize database and team costs, ensuring timely setup and renewal of reservations to reduce costs.
Collaborate with development teams to review and optimize DB queries.
Plan and manage regular database maintenance activities.
Oversee DB Managed Services vendor performance and evaluate monitoring setups, alerts, and thresholds.
Perform regular database upgrades and ensure database hardening to eliminate vulnerabilities.
Address data security requirements, including encryption and sanitization during non-prod DB refresh activities.
Handle user security and audit activities.
Evaluate new tools and capabilities.
Develop and maintain best practices for development teams.
Requirements:
Bachelor's degree in computer science or equivalent practical experience.
At least 9-12 years of experience in data architecture, data engineering, or related fields, with a focus on designing and implementing large-scale data solutions.
Strong experience in leading data architecture initiatives, including building data warehouses, data lakes, and cloud-based data platforms.
Proven track record in designing and optimizing data systems for high availability, scalability, and performance.
Expertise in relational and NoSQL databases (e. g., PostgreSQL, MySQL, Cassandra, Timescale).
Extensive experience with cloud data platforms (e. g., AWS)) and cloud-native data services (e. g., Redshift, BigQuery, Snowflake, Databricks).
Strong expertise in data modeling, ETL/ELT processes, and data integration tools (e. g., Apache Kafka, Talend, Informatica, dbt).
Proficiency in data pipeline automation, and orchestration tools (e. g., Airflow, Apache NiFi).
Hands-on experience with big data processing frameworks (e. g., Hadoop, Spark).
Proficient in SQL, Scala, and/or Java for data management and automation.
Strong leadership and mentorship abilities, with a proven track record of leading technical teams.
Excellent communication skills, with the ability to engage with both technical and non-technical stakeholders.
Ability to influence and drive change within a cross-functional team, advocating for best practices in data management.
Analytical and problem-solving mindset with the ability to think strategically and execute tactically.
Self-motivated and adaptable to changing business needs and evolving technologies.
Experience
15-19 yrs
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