Engineering Manager – AI Engineering

Full Time
Verified Opening · Sourced from official employer portal
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Meesho

Company
Meesho
Role
Engineering Manager – AI Engineering
Location
Bangalore, Karnataka
Work arrangement
On-site
Experience level
2-5
Compensation
Not published by the employer
Listed on
lever

Meesho is hiring a Engineering Manager – AI Engineering in Bangalore, Karnataka. The salary has not been published by the employer. Everything below comes from the employer’s own posting, with the apply link going directly to their careers portal.

About this role

About Meesho Meesho is India's fastest-growing internet commerce company, on a mission to democratize e-commerce for everyone. We serve millions of customers and over 1.75 million sellers through technology-driven innovation, building the scalable systems that power Meesho's most critical surfaces — Search, Recommendations, Personalized Ranking, Logistics, Fraud Detection, and Image Match. The AI Platform sits at the heart of this. It serves a peak of 1M+ real-time deep-learning model inferences per second on ordinary days, scaling 3x+ on sale days — with the reliability that scale demands. The team works at the frontier of applied AI and infrastructure — multi-region inference, novel embedding-search algorithms, and optimized open-weight LLM models — squeezing out every bit of computation and passing the cost savings straight back to customers. About the Role We are looking for an experienced Engineering Manager – AI Engineering to lead the development of scalable AI platforms and infrastructure while managing high-performing engineering teams. You will drive the design, delivery, and optimization of production-grade AI systems powering AI use cases across Meesho. What You'll Do Lead, mentor, and grow a team of AI engineers — setting technical direction, raising the engineering bar, and owning execution and delivery end to end. Architect and scale Meesho's AI platform: cross-region model inference, multi-GPU fleet allocation and management, distributed training, and feature-engineering infrastructure. Drive inference optimization across the full stack — GPU kernel tuning, quantization (including outlier/tail-distribution handling), and memory/IO-bandwidth optimization — while building agents that codify and delegate known optimization procedures. Optimize open-weight models at both the model and inference-engine level — distillation, quantization, speculative decoding, KV-cache and serving-engine tuning. Scale data-science productivity through autonomous, agent-driven workflows spanning feature engineering, model training, and rollout. Push the frontier across MLOps, LLMOps, compute efficiency, and distributed ML systems. Partner with Product, Data Science, and Platform teams to turn AI capabilities into production impact for millions of users. Own the team's operating rhythm: hiring, performance management, sprint planning, and OKRs. What You'll Need Bachelor's or Master's in Computer Science or a related field. 9+ years of software engineering experience, including 2+ years managing engineers. Strong hands-on experience with the modern LLM inference stack — TensorRT-LLM, vLLM, SGLang — and with production, low-latency model serving at scale. Depth in inference optimization: GPU kernel tuning, quantization, speculative decoding, KV-cache and memory/IO optimization. CUDA / GPU programming experience is a strong plus. Experience with distributed training and the frameworks behind it — PyTorch FSDP, DeepSpeed, Megatron, or Ray. Experience running GPU fleets in production — Kubernetes (ideally GKE), GPU scheduling and allocation, and multi-region/multi-cluster deployment. Familiarity with building LLM-powered agents and agentic workflows, and a point of view on where autonomy can replace manual engineering toil. Experience with big-data and streaming stacks — Spark, Flink, or similar. Proficiency in Python; systems-level fluency (C++ / Go / Rust) for performance-critical paths. Strong leadership, problem-solving, and stakeholder-management skills. Preferred Open-source contributions to inference engines, training frameworks, or ML infra tooling. Experience managing GPU cost/efficiency (FinOps) for a large fleet on Cloud and Neo-Clouds. Track record building platforms for high-scale consumer products (millions of users). Familiarity with observability and reliability for ML systems (SLOs, autoscaling, incident response).

Apply on the official careers portal →

Links directly to the employer’s own application form. Free to apply.

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What the pay looks like

Meesho has not published a salary for this role. That is normal — many employers only discuss pay once you reach the offer stage. Ask the recruiter for the range early so you do not spend weeks on a process that cannot meet your number.

Whatever figure you are quoted is CTC, not take-home. Employer PF, gratuity and any variable component sit inside it. Our in-hand salary calculator converts a CTC figure into a realistic monthly number.

General guidance — applies to any listing

Before you apply

Never pay to apply. No genuine employer charges a registration fee, security deposit or training cost. Any request for money is a scam, without exception.

Apply through the employer’s own domain. The button above points at Meesho’s careers portal. If you reach this role through a message or email instead, navigate to the company’s site yourself rather than following the link.

Hold back personal documents. Bank details and identity documents belong at the offer stage, confirmed over official company email — never during a chat-app conversation.

Common questions

Is this listing genuine?

Yes. The apply button links to the requisition on Meesho’s own applicant tracking system, not to a third-party form. TechJobs360 never charges candidates.

How current is it?

This listing was published on 2026-07-31 and is checked against the employer’s portal daily. If Meesho closes the requisition, the page is withdrawn. Openings can still close between checks, so treat the employer’s own portal as authoritative.

What are the eligibility requirements?

Meesho lists this as a 2-5 role. Exact eligibility — degree, batch year and cut-offs — is set by the employer and stated on the official posting.

How do I apply?

Use the apply button above. It opens Meesho’s official application form — there is no TechJobs360 step in between and no account needed here.

TechJobs360 is an independent career-information platform and is not the employer for this role. Eligibility, compensation and deadlines are set by Meesho and can change without notice. Always confirm current details on the official portal before applying. We never charge candidates a fee.



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