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Lead Backend Engineer, Data Engineering & AI

Relanto

On-site
Bengaluru, India
Full-time
Lead
Senior
6+ yrs
Salary not listedPosted 11m ago

Real job — pulled straight from Relanto’s careers page · Verified October 7, 2026 · No reposts.

Job description

Relanto is hiring a Lead Backend Engineer, Data Engineering & AI — a full-time, based in Bengaluru, India role. Apply directly on Relanto's careers page below.

Lead Backend Engineer - Data Engineering & AI

Location: Bengaluru, India; Hyderabad, India

Department: Data & AI

Experience: 6+ Years


Design, build, and maintain the backend services, APIs, data-platform automation, and AI agents behind our data products. This is a backend-heavy role: distributed Python services, streaming LLM/agent runtimes on AWS, RAG pipelines, and the dbt/Airflow automation that powers our data products.

Responsibilities

    • Design, build, and maintain backend services and APIs in Python — RESTful and streaming (SSE) endpoints, agent runtimes on AWS Bedrock AgentCore / ECS Fargate, and event-driven Lambda handlers.
    • Architect service boundaries and data flows: define contracts between services, model persistence, and manage state, caching, and asynchronous/background processing.
    • Build RAG pipelines and tool-calling AI agents over our data products: retrieval, orchestration, grounding, and evaluation.
    • Design data access and storage layers: schema/data modeling, query performance, connection/session management, and integration with warehouses (Snowflake) and key-value stores (DynamoDB).
    • Implement auth and identity: OAuth/OIDC flows (per-user 3LO, token vaulting, session binding), least-privilege IAM, secrets management.
    • Build and maintain data-platform automation: dbt models, MWAA/Airflow orchestration, and tooling for discoverable, governed, consumable data products.
    • Own service reliability and delivery: Terraform, GitHub Actions CI/CD, container builds, structured logging, metrics/tracing, alerting, and cost controls.
    • Set technical direction: system and API design, code review, and mentoring.

Required skills

Backend engineering

    • 5+ years designing, building, and maintaining production backend services at scale. 10+ years if Lead level engineering candidate.
    • Expert-level Python for server-side development; solid grasp of at least one web/async framework (e.g. aiohttp, FastAPI, Flask) and the WSGI/ASGI model.
    • Service and API design: REST (and/or gRPC), request/response and streaming patterns, pagination, versioning, idempotency, and backward-compatible contracts.
    • Data layer: SQL and data modeling, query optimization and indexing, transactions, connection pooling; experience with relational, warehouse (Snowflake), and NoSQL/key-value (DynamoDB) stores.
    • Server-side patterns: caching strategies, background jobs/workers, queues and event-driven processing, rate limiting, retries/backoff, and timeouts.
    • Performance & reliability: profiling, load handling, latency/throughput trade-offs, graceful degradation, and designing for failure.
    • Observability: structured logging, metrics, distributed tracing, and debugging live production issues.

Software engineering fundamentals

    • Object-oriented programming (required): encapsulation, abstraction, inheritance, composition, polymorphism; SOLID principles; design patterns applied pragmatically; strong domain modeling.
    • Solid data structures & algorithms; ability to reason about time/space complexity.
    • Concurrency and async programming (async/await, threading, event loops) and their failure modes.
    • Testing (unit, integration, end-to-end) and testable design; Git and PR-based workflows; disciplined code review.

Cloud & infrastructure

    • Production AWS: ECS/containers, Lambda, IAM, API Gateway, DynamoDB.
    • Infrastructure as code with Terraform; CI/CD (GitHub Actions or equivalent) and container builds.

Distributed systems

    • Building services that are horizontally scalable, resilient, and loosely coupled; handling consistency, retries, idempotency, and partial failure.

Security

    • OAuth/OIDC, authn/authz, token handling, least-privilege access, multi-tenant isolation, secrets management.

AI / LLM engineering

    • Building LLM applications in production (not research).
    • RAG: chunking, embeddings, vector search, hybrid search, reranking, grounding/citations, context-window management, retrieval evaluation.
    • Agents: prompt engineering, tool use/function calling, structured outputs, agent orchestration (single- and multi-step), prompt caching.
    • Integration with model providers — Anthropic/Claude, AWS Bedrock/AgentCore, Snowflake Cortex — and response streaming.
    • AI quality & ops: eval harnesses, guardrails, tracing/observability, token/latency/cost optimization.
    • AI security: prompt injection, data exfiltration, PII handling, per-user identity/RBAC enforcement.

Nice to have

    • dbt, Airflow/MWAA, Snowflake.
    • MCP (Model Context Protocol) and/or RAG
    • Slack platform (Bolt, Socket Mode, Block Kit) or other real-time/conversational backends.
    • Fine-tuning/adaptation, semantic caching, or model routing/fallback.
    • Experience adding AI capabilities to existing production systems.


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Frequently asked questions

What skills are required for Lead Backend Engineer, Data Engineering & AI at Relanto?

The required skills for Lead Backend Engineer, Data Engineering & AI at Relanto include: Python, REST, Lambda, Snowflake, DynamoDB, OAuth, IAM, Terraform, GitHub Actions, dbt, Airflow, RAG, LLM, SQL, Git, AWS.

What is the seniority level for Lead Backend Engineer, Data Engineering & AI at Relanto?

Lead Backend Engineer, Data Engineering & AI at Relanto is a Lead / Senior level position.

How do I apply for Lead Backend Engineer, Data Engineering & AI at Relanto?

You can view the full description and apply for Lead Backend Engineer, Data Engineering & AI at Relanto on EchoJobs: https://echojobs.io/job/relanto-lead-backend-engineer-data-engineering-ai-uvtlm.