Jobs Companies NVIDIA Senior Developer Relations Manager - FSI

Sobre esta vaga de Senior Developer Relations Manager - FSI na NVIDIA

NVIDIA · Presencial · India, Mumbai

NVIDIA is the leading full-stack accelerated computing company, powering the next wave of generative AI, agentic AI, deep learning, data science, cloud-native AI, and edge AI. This role will lead hands-on Developer Relations with India's AI Labs, helping researchers, ML infrastructure teams, and startup CTOs adopt NVIDIA platforms for model development, training, optimization, deployment, and production inference.

The ideal candidate is a senior technical DevRel leader who can earn credibility with ML researchers and platform engineers. This person should be comfortable reading code, writing examples, building demos, running benchmarks, explaining architecture tradeoffs, profiling workloads, and translating developer feedback into useful product input.

What You'll Be Doing:

  • Build and execute a technical Developer Relations strategy to grow NVIDIA platform adoption across AI Labs in India.

  • Develop trusted relationships with founders, CTOs, ML researchers, ML infrastructure teams, platform leaders, and developer communities.

  • Identify and accelerate high-value workloads such as foundation model training, fine-tuning, speech AI, retrieval augmented generation, multimodal AI, inference optimization, and production model serving.

  • Assess which AI Lab workloads are a strong fit for GPU acceleration by profiling bottlenecks and distinguishing compute-bound problems from memory-bound, IO-bound, network-bound, or orchestration-bound issues.

  • Build and adapt technical demos, sample code, notebooks, benchmark plans, reference architectures, and performance guides.

  • Run deep technical workshops, code labs, architecture reviews, office hours, developer sessions, technical webinars, and executive briefings.

  • Work hands-on with developers to debug integration issues, profile workloads, improve inference performance, and identify the right NVIDIA software stack for each use case.

  • Explain why similar model workloads may perform differently across labs due to model architecture, data pipeline design, batch size, latency targets, storage/network behavior, software stack, or deployment environment.

  • Capture developer feedback, technical blockers, competitive insights, and product requirements for NVIDIA product and engineering teams.

What We Need To See:

  • Bachelor’s degree in engineering, computer science, data science, or a related technical field—or equivalent experience.

  • 8+ years of experience in AI platforms, cloud infrastructure, fintech, payments, banking technology, data science, solution architecture, or developer ecosystems.

  • Strong knowledge of machine learning, deep learning, generative AI, real-time inference, data engineering, MLOps, and cloud-native systems.

  • Experience with regulated environments, high-availability systems, privacy, security, compliance, and production observability.

  • Ability to profile AI workloads across compute, memory, I/O, networking, latency, throughput, batching, GPU suitability, and cost-performance tradeoffs.

  • Ability to lead technical and business discussions with engineering, platform, risk, and senior stakeholder teams.

  • Excellent communication, stakeholder management, execution, and cross-functional collaboration skills.

  • Working knowledge of NVIDIA AI technologies, including NIM, Triton, TensorRT, TensorRT-LLM, CUDA, Nsight, RAPIDS, NGC, NVIDIA AI Enterprise, and GPU Operator.

  • Ability to apply NVIDIA technologies to fraud, risk, document AI, customer service, real-time decisioning, feature engineering, and large-scale analytics workloads.

  • Ability to design secure, observable, compliant, and cost-efficient GPU-accelerated deployments across cloud, data-center, Kubernetes, and hybrid environments.

Ways To Stand Out from the crowd:

  • Experience in payments, fintech, banking technology, financial infrastructure, fraud platforms, compliance technology, or risk systems.

  • Experience creating workload qualification frameworks, benchmark plans, or technical decision guides that help financial services developers decide when GPU acceleration is the right fit.

  • Knowledge of fraud models, risk models, graph analytics, transaction intelligence, document AI, or real-time decisioning systems.

  • Prior experience turning NVIDIA GPU computing, AI software, model serving, or acceleration libraries into regulated workload playbooks or production adoption plans.

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NVIDIA pioneered accelerated computing. Today, our AI infrastructure powers global intelligence, transforming every industry. Learn more about NVIDIA .

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