Principal Software Engineer — Backend & Infrastructure - Noida / Bengaluru
Levelai
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2,020 open infrastructure roles across 292 companies are on ApplySarthi right now, most of them in Bengaluru (67), Hyderabad (28), Mumbai (12).
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What infrastructure roles keep asking for: AWS (30%), System design (21%), Python (21%), Kubernetes (21%), Observability (19%), Terraform (15%), CI/CD (13%), GCP (12%) — counted across their open postings here.
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Levelai has 19 open roles listed here.
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Counted across 14 company job boards, updated as roles open and close.
Preparing for this interview
Interviews for infrastructure roles keep coming back to AWS, System design, Python, Kubernetes. Practise those questions before you sit with Levelai.
Questions you are likely to be asked
- Why do you want to join Levelai?
- What is your experience with NLP? Tell me one thing you learned the hard way.
- How do you keep secrets and access safe in your infrastructure?
- Walk me through how code gets from a commit to production where you work.
- Tell me about an outage you handled. What did you learn from it?
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Practise the Principal Software Engineer — Backend & Infrastructure - Noida / Bengaluru at Levelai interview free →About Level AI Level AI is a Series C conversational intelligence company headquartered in Mountain View, CA, backed by top-tier VCs and Silicon Valley operators. We help enterprise contact centers understand every customer conversation — using speech AI, NLP/NLU, and retrieval systems to turn millions of unstructured interactions into decisions businesses can act on. Why this role exists We're at the scaling inflection point. The systems that carried us from Series A to Series C won't carry us to the next stage, and we need someone to own that transition — not just build inside it. This is a Principal role: you'll set technical direction for backend and ML infrastructure across multiple teams, make the architectural calls that are expensive to reverse, and raise the engineering bar through design reviews, mentorship, and the standards you set by example. You'll report to the VP of Engineering and partner directly with our ML, Product, and Infrastructure leads across both sites. You'll work alongside engineers from Amazon, Google, and Meta who chose to build here because the problems are unsolved and the ownership is real. What you'll do: Own the architecture for real-time data processing at scale. Design and evolve distributed messaging systems that handle high-throughput streaming workloads with strict latency requirements. Build the ML platform that lets us ship models faster. Define and execute the technical roadmap for training and serving infrastructure as our models grow in size, complexity, and inference cost. Scale our GPU infrastructure. Own capacity planning, scheduling, and utilization across training and inference fleets — deciding what runs where, how we handle burst demand, and how we keep spend tied to actual throughput rather than idle reservations. Scale inference. Drive down latency and cost per request as model complexity and traffic grow: batching and routing strategies, quantization and compilation, autoscaling, and caching — without degrading output quality. Make reliability a property of the system, not a heroic effort. Drive uptime, observability, and incident response for serving systems that enterprise customers depend on in production. Turn ambiguous business problems into executable technical plans. Partner with Product and GTM to scope large cross-functional initiatives, then break them into work other teams can run with. Multiply the team. Lead design reviews, mentor senior engineers, and shape the engineering practices that outlast any single project. Bring the outside in. Evaluate emerging tools and techniques with judgment — adopt what earns its complexity, skip what doesn't. What success looks like in your first year: 90 days: You've mapped our critical paths and failure modes, shipped a meaningful improvement to a serving or pipeline bottleneck, and earned trust across both sites. 6 months: You own a published technical roadmap for [messaging / ML infra], with at least one major migration or redesign underway. GPU utilization and inference cost per request are measured, and trending the right way. 12 months: Our infrastructure scales predictably with customer growth, inference cost stays flat or falls as volume rises, on-call load is down, and other engineers are making better architectural decisions because of standards you established. What you'll bring: [10]+ years building backend and infrastructure systems, with a track record of owning architecture and design at scale — not just implementing it. Deep, hands-on experience with large-scale databases, high-throughput messaging systems, and real-time job queues. Proven ability to navigate large, complex codebases and reason clearly about architectural tradeoffs in systems you didn't build. Experience mentoring senior engineers and driving technical decisions through influence rather than authority. Strong written communication — you'll be making technical cases to engineers in two time zones and business cases to executives. BTech/MTech/PhD in Computer Science or equivalent. At this level we weight track record well above pedigree. Bonus points for: Production experience with our stack: Django, Celery, Redis, PostgreSQL, and Google Cloud. Hands-on experience scaling GPU infrastructure and model inference in production — capacity planning, scheduling and utilization, autoscaling, and latency/cost optimization under real traffic. Depth in specific inference tooling — vLLM, TensorRT, Triton, Ray Serve, or equivalents — and experience benchmarking tradeoffs between them. Experience scaling a platform through a comparable growth stage (Series C → D, or equivalent), especially at a global product company's India site. Background in speech, NLP, or information retrieval systems. Compensation & benefits: Health coverage for you, your spouse, children, and parents. [home-office and connectivity allowance / annual learning budget / parental leave — trim to what's accurate]. Real ownership over systems used by enterprises worldwide, with the autonomy to decide how they're built. How we hire: [4] stages, typically [2] weeks end to end: recruiter screen → technical deep dive → system design → team and leadership conversations → offer. Interviews are conducted from our India team with [one/two] conversations with US-based leadership. We'll tell you where you stand at every step.
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Listed on lever · posted 2026-08-10. ApplySarthi collects openings and links to application pages; the role is advertised by Levelai, not by us.