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AI Data Platforms Lead

PublishedPublished: 6/14/2022
Technology

Job Description

Title- AI-First Data Platforms Lead

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Location-Dallas, TX, Onsite (3-4 days/ week)

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Contract

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Qualifying Questions:

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Do you have experience with major database platforms such as Oracle, SQL Server, PostgreSQL, MySQL, MongoDB, or cloud-managed databases?

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Do you have experience with cloud platforms such as AWS, Azure?

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AI-First Data Platforms Lead – Executive Summary

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  • Own the enterprise database platform strategy, architecture, governance, and technology roadmap.
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  • Lead the transformation from traditional DBA operations to an AI-first Database Platform Engineering model.
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  • Drive AI-powered automation for database provisioning, monitoring, maintenance, performance tuning, and incident management.
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  • Build and manage self-service database provisioning capabilities to accelerate engineering delivery and reduce manual effort.
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  • Ensure database platforms are secure, scalable, resilient, highly available, and cost-efficient across on-premises and cloud environments.
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  • Lead database modernization, consolidation, migration, and cloud adoption initiatives.
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  • Establish standards, best practices, governance, and lifecycle management for enterprise database platforms.
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  • Implement observability, predictive monitoring, and AIOps capabilities to proactively prevent outages and improve reliability.
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  • Partner with Engineering, Infrastructure, Security, Architecture, and Application teams to deliver platform services and approved patterns.
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  • Drive adoption of Infrastructure-as-Code (IaC), DevOps, CI/CD, and Database-as-a-Service (DBaaS) capabilities.
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  • Ensure compliance, data protection, access controls, backup, recovery, and disaster recovery readiness.
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  • Mentor and develop database engineers while fostering a culture of automation, innovation, and operational excellence.
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  • Evaluate emerging database, AI, and cloud technologies to continuously improve platform capabilities.
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  • Optimize platform costs through standardization, automation, capacity planning, and resource utilization.
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Business Impact

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  • Reduces operational risk through intelligent automation and standardized platforms.
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  • Improves performance, availability, reliability, and security of enterprise databases.
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  • Accelerates provisioning from days to minutes through self-service capabilities.
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  • Enhances compliance and governance while reducing manual administrative effort.
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  • Lowers long-term support and infrastructure costs through automation and platform rationalization.
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  • Enables engineering teams to move faster with AI-enabled platform services and expert guidance.
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  • Creates a scalable foundation that supports enterprise growth, cloud strategy, and future AI initiatives.
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Key Success Measures

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  • Significant reduction in manual DBA effort through AI and automation.
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  • Faster database provisioning and deployment cycles.
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  • Improved uptime, reliability, and recovery capabilities.
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  • Reduced incident volume and Mean Time to Resolution (MTTR).
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  • Increased adoption of self-service database services.
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  • Lower total cost of ownership (TCO) through optimization and standardization.
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Regards

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Raahul Bansiwala

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linkedin.com/in/rahul-b-14b5a4168

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(2014792186) | Office: (201) 479 2186 EXT: 444

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rahulb@net2source.com

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www.net2source.com

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270 Davidson Ave, Suite 704, Somerset, NJ 08873, USA

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Knowledge is Power.

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