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Sr. Software Engineer – Backend

myHQ by ANAROCK · Bangalore, India

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Roles: SDE-3 or Tech Lead Engineer Experience: 6-9 years Location: Bangalore About ANAROCK and myHQ At myHQ, we’re reimagining how India works. We are building India’s largest marketplace platform for flexible workspaces helping individuals and teams across 25+ cities find workspaces that just work. We’re a small, product-first team backed by ANAROCK, moving fast and solving real engineering problems at scale. This is where you’ll get to own systems end-to-end, not just push tickets. About the role We’re looking for a Backend Technical Lead who can own the engineering vision for the platform end-to-end. This role is equal parts technical leadership, system & platform designs, and people management. You will define our engineering roadmap, raise the bar on architecture, improve developer productivity ( increasingly with AI in the everyday development loop) , mentor engineers, and ensure high-quality sprint delivery. This is ideal for someone who thinks in systems and enjoys combining hands-on coding with leadership. Key Responsibilities

  • Own architecture end-to-end: design, build, and scale systems
  • Set the long-term technical direction.
  • Lead initiatives around performance, security, observability, and platform reliability.
  • Set standards for testing and code quality that hold up when a large share of code is agent-written.
  • Drive adoption of engineering best practices and new tooling across the org.
  • Mentor and lead engineers in the team
  • Own sprint planning, estimations, and delivery for engineering workstreams.
  • Ensure predictable execution while balancing short-term needs with long-term tech health. Desired Skills/ Experience
  • 6
  • 9 years building production-grade systems at scale.
  • Expertise in least one backend framework or language
  • Strong data modelling in both relational and document databases, and the judgment to know which one a problem wants.
  • Fluency in the fundamentals: caching, queues and async work, idempotency, read scaling, concurrency and connection limits, and an accurate mental model of how database perform under load.
  • Ability to lead technical discussions, make trade-offs, and guide teams through ambiguity.
  • Experience improving developer productivity through tooling, process, or automation
  • Comfort building product surfaces on top of LLMs
  • retrieval, structured extraction, evaluating output quality.
  • Experience leading an engineering team or mentoring senior engineers. Nice to have
  • Worked at an mid-stage startup.
  • Experience with eCommerce, Marketplace, discovery, search or geospatial systems.
  • Event-driven architecture and message queues at scale.
  • Working effectively with AI coding agents: the scaffolding, tests and conventions that let them ship safely rather than just quickly. People & Culture
  • Freedom to execute, an open culture with passionate and smart co-workers
  • Performance oriented team driven by ownership and open to experimentation
  • New tooling, AI included, gets tried early rather than debated at length
  • Lean, fast-moving team where engineers own critical systems end-to-end. Other Perks / Benefits
  • Comprehensive term and health insurance for you and your dependents
  • Paid maternity / paternity leave to let you spend valuable time with your loved ones
  • Learning budget
  • AI / LLM tooling for every engineer, and the room to actually use it Frequently Asked Questions What’s the interview process like? The interview process consists of 3-4 rounds of technical discussion of 60 mins each and a 30 min cultural fitment discussion. The technical discussion rounds cover past projects, programming basics, DS / Algo and system design. This is followed by a 30 min cultural fitment round. What’s the technical stack that you’re working on? Our tech stack is built on
  • Core platform: Node.js and Express, layered service architecture, MongoDB with Mongoose
  • Newer services: TypeScript on Node, PostgreSQL with pgvector, Prisma
  • Async and caching: Redis, BullMQ, change streams, Elasticsearch
  • Infrastructure: DigitalOcean and AWS, nginx, PM2, Lambda for isolated services
  • Observability: Sentry, Elastic APM and Kibana, CloudWatch
  • Testing: Mocha, Chai and Sinon on the core platform, Vitest on newer services
  • Clients: React, Angular with Capacitor, Next.js, served through BFFs
  • AI: LLM APIs behind product surfaces, embeddings and vector search on pgvector, evals in the release loop, and coding agents in the daily workflow