SDE III (Backend) Agentic SDLC

Arintra

Bengaluru

On-site

INR 2,800,000 - 4,200,000

Full time

14 days+
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Job summary

Arintra is seeking a seasoned Backend Engineering Lead in Bengaluru to design, build, and own scalable Java/Spring Boot microservices. You will drive architecture, API design, and end-to-end implementation, with accountability for performance, reliability, and production readiness across complex systems.

You will lead cross-functional reviews, mentor engineers, and shape SDLC practices for AI-assisted workflows, ensuring security, testing, and governance.

Qualifications

  • 6+ years in backend engineering, with at least 2 in a lead or tech-lead capacity.

Responsibilities

  • Design, build, and own backend services in Java, Spring Boot, and a microservices architecture with real accountability for performance, scalability, and robustness.

Skills

Java
Spring Boot
Hibernate/JPA
Microservices
HLD/LLD
Agentic SDLC
Code review & tests
Git
CI/CD
Automated testing
Mentoring
Leadership
Observability
Prompt/agent tooling
MCP integrations

Tools

Claude Code
Cursor
Codex
Devin
Copilot Workspace
Aider
Jira
BigQuery
Observability tooling

Job description

The candidate will have responsibilities across the following functions:

Backend engineering:
  • Design, build, and own backend services in Java, Spring Boot, and a microservices architecture with real accountability for performance, scalability, and robustness.
  • Own server-side logic, data models, APIs, and integrations end-to-end.
  • Drive HLD and LLD for new services and for material refactors of existing ones.
  • Agentic SDLC ownership.
  • Own how agentic tooling is applied across our SDLC spec/design, implementation, review, testing, and production monitoring, not just at the coding step.
  • Build and maintain the scaffolding that makes agents effective on a large codebase: repo-level context and instruction files, custom agents/subagents, slash commands and reusable workflows, MCP integrations to internal systems (Jira, BigQuery, observability, docs).
  • Define the review bar for agent-generated code: what gets human-reviewed, what gets gated by tests, what never gets delegated.
  • Instrument and evaluate the workflow cycle time, review turnaround, escape defect rate, and test coverage on agent-authored changes and iterate based on that data, not vibes.
  • Raise the team's ceiling: onboard engineers onto these workflows, run internal enablement, and set guardrails for security, licensing, and data handling when agents touch source code and production data.
  • Leadership: Lead across teams cross-functional design reviews, technical direction, and mentoring senior and mid-level engineers.
  • Make and defend build/buy/delegate decisions on tooling.
Requirements:
  • 6+ years in backend engineering, with at least 2 in a lead or tech-lead capacity.
  • Strong proficiency in Java, Spring Boot, Hibernate/JPA, and microservices.
  • Demonstrated experience in HLD and LLD, and in designing, building, and deploying microservices-based systems in production.
  • Hands-on agentic SDLC experience within the last 12 months: you have shipped production software where AI agents were a primary part of the workflow. Concretely, experience with tools such as Claude Code, Cursor, Codex, Devin, Copilot Workspace/agent mode, Aider, or equivalent, applied to at least three of: design, implementation, code review, test generation, and production debugging/monitoring.
  • Practical judgment about where agents fail in context management on large codebases, hallucinated APIs, silently wrong tests, review fatigue and concrete mitigations you've put in place.
  • Solid grounding in Git, CI/CD, and automated testing, including how these change when a large share of dis are agent-authored.
  • Strong SDLC fundamentals and a track record of working with multiple teams.
Nice to have:
  • Built custom agents, subagents, or MCP servers against internal systems.
  • Prompt/context engineering at the repo scale (e. g., CLAUDE. md-style instruction files, retrieval over internal docs, codebase indexing).
  • Experience with LLM evaluation, regression harnesses, or accuracy pipelines.
  • Observability tooling (New Relic, Datadog, Prometheus/Grafana) and agent-assisted incident triage.
  • Healthcare, FHIR/HL7 or medical coding domain exposure.
  • Python for tooling and data work; PostgreSQL, Elasticsearch, or Neo4j; GCP or AWS.
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