Software Engineer, Databases (Technical Leadership)

Meta

$175K — $210K *
Information Technology
11 - 15 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Computer Engineering, or related field, or equivalent experience
  • 12+ years in database systems engineering or 8+ years with a PhD
  • Expertise in database architecture and internals with industry experience
  • Proven ability to architect and manage large-scale database infrastructure
  • Skilled in resolving complex performance and reliability issues across database components
  • Ability to define engineering standards and architectural patterns
  • Strong communication skills for conveying complex technical concepts to diverse audiences

Responsibilities

  • Define the technical vision and architecture for MySQL infrastructure at Meta
  • Architect database enhancements to support AI workloads and large-scale data needs
  • Address complex database challenges involving performance and system reliability
  • Lead the design and implementation of key database internals for efficiency and correctness
  • Set coding standards and architectural guidelines to enhance team velocity
  • Develop testing frameworks to ensure database reliability and integrity
  • Utilize AI tools for performance optimization and workflow enhancement
  • Collaborate with cross-functional teams to align database design with organizational goals
  • Establish and monitor database metrics that connect engineering results to broader priorities
  • Mentor engineers on database design, optimization, and internals

Benefits

  • Collaborative work environment with top-tier engineering talent
  • Opportunities for professional growth and technical leadership
  • Access to cutting-edge AI tools and technology
  • Engagement with large-scale, impactful projects
  • Flexible working arrangements and work-life balance initiatives
Full Job Description
Meta is seeking a distinguished Software Engineer specializing in database internals to drive the technical direction of our MySQL infrastructure that powers Meta's family of products and platforms. In this role, you will architect and evolve critical database systems within our MySQL team including our custom storage layer (MyRocks) and replication layer (MyRAFT) that underpin billions of user interactions daily. You will identify and solve the hardest database-level challenges across the organization, define multi-year technical strategy to adapt our relational database systems to support Meta's AI needs, and serve as a force multiplier for engineering teams through deep database expertise, AI-native workflows, and cross-functional leadership.

Responsibilities

Define and drive the long-term technical vision and architecture for Meta's MySQL infrastructure, including the MyRocks storage engine and MyRAFT replication layer
• Architect database system enhancements to support Meta's evolving AI workloads and large-scale data requirements
• Identify and resolve the most complex database-level performance, reliability, and correctness challenges that span storage, replication, query execution, and transaction processing
• Lead the design and implementation of critical database internals including storage engine optimizations, replication protocols, query planning, and transaction management ensuring correctness, efficiency, and long-term maintainability
• Establish extensible technical foundations, coding standards, and architectural patterns that improve consistency and velocity across database engineering teams
• Develop and operationalize testing frameworks, verification methodologies, and data integrity checks that prevent database bugs and reliability regressions at scale
• Leverage AI tooling and automation to optimize database performance, accelerate development workflows, and identify optimization opportunities
• Partner with product, infrastructure, and platform engineering teams to translate complex database requirements into durable technical designs, influencing roadmaps across organizational boundaries
• Define and track database-level metrics, SLOs, and performance guardrails that connect engineering outcomes to organization-level priorities
• Mentor engineers across the organization on database design principles, query optimization techniques, and storage engine internals

Minimum Qualifications
• Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience
• 12+ years of experience in database systems engineering, including design and implementation of database internals such as storage engines, replication systems, query optimizers, or transaction processing OR 8+ years experience with a PhD
• Experience working on database teams in the industry, with deep expertise in database architecture and internals
• Experience architecting and owning large-scale database infrastructure used across multiple teams or organizations, including driving multi-year technical roadmaps
• Experience identifying and resolving complex database performance, reliability, or correctness issues spanning storage, replication, or query execution layers
• Experience defining engineering standards, architectural patterns, and verification methodologies that improve database system quality and consistency
• Experience communicating complex database architecture and technical strategy in writing and presentations to both technical and non-technical stakeholders

Preferred Qualifications
• Demonstrated ongoing AI skill development (e.g., prompt/context engineering, agent orchestration) and staying current with emerging AI technologies
• Experience with database internals, like storage engines
• Experience leading database migrations, schema evolution, or platform modernization efforts in large-scale production environments
• Experience with distributed database systems, consensus protocols (such as Raft or Paxos), or building highly available data infrastructure
• Experience applying AI and machine learning techniques to database optimization problems, such as query optimization, workload prediction, or automated performance tuning
• Demonstrated ability to integrate AI tools to optimize/redesign workflows and drive measurable impact (e.g., efficiency gains, quality improvements)
• Experience adhering to and implementing responsible, ethical AI practices (e.g., risk assessment, bias mitigation, quality and accuracy reviews)

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