Lead Software Engineer - Python, Gen AI

JPMorganChase

Bengaluru

On-site

INR 3,600,000 - 6,000,000

Full time

26 hours ago
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Job summary

JPMorgan Chase is seeking a Manager of Software Engineering to lead multiple teams within Corporate Technology. You will drive day-to-day implementation, ensure compliance, and oversee automation initiatives including AI-assisted development and SDLC/TLM automation.

You will manage security, data accountability, and governance, while coordinating across product and engineering teams to maintain high velocity and reliability at scale.

Qualifications

  • Bachelor's degree (or equivalent) in software engineering with 8+ years of experience.
  • Expertise in at least one technology stack with track record of delivering production software.
  • Strong experience with Kubernetes, AWS/other cloud platforms, and Big Data/ETL pipelines.
  • Strong development experience in Java, Python, or Scala.
  • Experience leading enterprise AI-assisted development and delivery tools.
  • Understanding of responsible AI use and governance in engineering workflows.
  • Working knowledge of core infrastructure components and SRE best practices.
  • Proficiency in observability tools (Grafana, Dynatrace, Prometheus, Datadog, Splunk).
  • Proficiency in CI/CD tools (Jenkins, GitLab, Terraform).

Responsibilities

  • Lead multiple teams and manage day-to-day implementation activities to ensure compliance and business requirements.
  • Design, code, test, and deliver automation to streamline operational workstreams and remediation.
  • Own security, data accountability, and proper data handling across applications.
  • Coordinate across product and engineering to prioritize work and drive execution at scale.
  • Promote enterprise AI-assisted engineering practices and SDLC/TLM automation.
  • Ensure resilient production services with monitoring, security, and incident management.

Skills

Team leadership
Problem solving
Communication

Education

Bachelor's degree in software engineering

Tools

Kubernetes
AWS
Big Data/ETL
Java
Python
Scala
CI/CD
Grafana

Job description

Job Description

As Manager of Software Engineering at JPMorgan Chase within the Corporate Technology, you lead multiple teams and manage day-to-day implementation activities by identifying and escalating issues and ensuring your team's work adheres to compliance standards, business requirements, and tactical best practices.

Job Responsibilities
  • Design, code, test, and deliver automation (including LLMs/agents) to eliminate manual operational work and streamline AO workstreams' remediations (e.g., control items, security vulnerabilities, upgrades, and FARM findings).
  • Govern application risk, controls, and compliance: own adherence to firm standards, partner with Technology Risk & Controls, manage Technology Lifecyle Management (TLM), and drive closure of issues/findings (e.g., FARM) through effective remediation and evidence management.
  • Own security and data accountability for the application: ensure strong authentication/authorization, vulnerability and certificate hygiene, and proper data registration/classification plus compliant storage/retention/disposal.
  • Coordinate across product and engineering at scale to prioritize and drive execution with a clear sense of urgency for AO workstreams (including influencing/coaching teams and aligning execution across large developer communities).
  • Leads team adoption of enterprise-authorized AI-assisted engineering practices and SDLC/TLM automation to improve delivery speed, quality, and operational outcomes, while setting expectations for human validation, secure handling of inputs/outputs, and consistent use of reusable patterns across teams.
  • Applies knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation and support capacity unlock initiatives.
  • Run resilient, well-operated production services end-to-end: implement monitoring/logging and anomaly detection, maintain secure network configurations/least privilege, and lead/support incident/problem/change management and recovery/resiliency readiness.
  • Demonstrates and champions site reliability culture and practices and exerts technical influence throughout your team
  • Leads initiatives to improve the reliability and stability of your team's applications and platforms using data-driven analytics to improve service levels
  • Collaborates with team members to identify comprehensive service level indicators and stakeholders to establish reasonable service level objectives and error budgets with customers
  • Documents and shares knowledge within your organization via internal forums and communities of practice
Required Qualifications, Capabilities, And Skills
  • Bachelor's degree (or equivalent experience) in a software engineering discipline with 8+ years of experience.
  • Expertise in at least one technology stack with a track record of designing, coding, testing, and delivering production software.
  • Strong experience with Kubernetes, AWS/other cloud platforms, and Big Data/ETL pipelines (e.g., Hortonworks/AWS), including scalable data processing solutions.
  • Strong development experience in Java, Python, or Scala, with excellent debugging and troubleshooting skills for complex production issues.
  • Experience leading responsible adoption of enterprise-authorized AI-assisted development and delivery tools across engineering teams, including defining ways of working (review/validation expectations), measuring outcomes, and ensuring secure handling of data.
  • Understanding of responsible AI use in engineering workflows, including data sensitivity considerations, resiliency/security implications, and governance expectations; ability to coach engineers on compliant and effective usage.
  • Working knowledge of core infrastructure components (routers, load balancers, cloud products, containers, compute, storage, networks) and ability to solve complex, mission-critical problems across domains.
  • Deep proficiency in SRE best practices: reliability, scalability, performance, security, enterprise system architecture, and toil reduction; able to implement within an application or platform.
  • Deep knowledge of software applications and technical processes, with emerging depth in one or more technical disciplines.
  • Proficiency in observability (white/black box monitoring, SLO alerting, telemetry collection) using tools such as Grafana, Dynatrace, Prometheus, Datadog, Splunk, etc.
  • Proficiency in CI/CD tools (e.g., Jenkins, GitLab, Terraform), plus ability to troubleshoot networking issues, solve data structure/algorithm problems, teach new languages, and collaborate across stakeholder levels.
Preferred Qualifications, Capabilities, And Skills
  • Certified in Python , Gen AI.
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