About Amit
English
Native or bilingual
Hindi
Native or bilingual
German
Conversational
Experience
- GlobantAI Software DesignerOctober 2024 - Today (1 year and 10 months)Focus: Agentic AI Systems & GCP AI MlOps Engineering• ● Collaborated with Google's Core Generative AI team on Agent Development Kit (ADK) deployment frameworks.• ● Designed and deployed multi-agent systems for cybersecurity clients using ADK and A2A protocol and MCP• ● Integrated LLM observability tools (Arize, W&B, MLflow, AgentOps) for production-level evaluation.• ● Deployed agent systems on Vertex AI Agent Engine and Cloud Run.• ● Architected RAG pipelines using Vertex AI RAG Engine, GCS, and memory bank.• ● Built scalable LLMOps pipelines within GCP using GKE and GitHub Actions.• ● Provisioned GKE infrastructure and implemented IAM, IAP, and service account security models.• ● Delivered multimodal agentic systems integrating Tavus and HeyGen with ADK Live API.• ● Designed end-to-end MLOps platform with:◦ o Kubeflow(Integrated with Vertex AI pipelines)◦ o Load balancers◦ o CI/CD automation◦ o Model monitoring & drift detection◦ o Staging-to-production deployment pipelines
- Publicis SapientSenior MLOps EngineerAugust 2023 - August 2024 (1 year)• ● Leading the team, and working as individual contributor both• ● Designed cross-cloud MLOps platform, deployed across GCP, Azure, and AWS, Deployed Custom kubeflow Dashboard with all its components, added mlflow as other component to ensure proper AI/ML model loggings and tracking, Deployed ArgoCD etc opensource packages.• ● Orchestrated Kubeflow pipelines for scalable training and deployment.• ● Built GitHub Actions CI/CD workflows for ML lifecycle automation along with github runner.• ● Provisioned infrastructure using Terraform across multi-cloud and deployed Kubernetes clusters on GKE, EKS, and AKS.• ● Implemented secure API gateways (APISIX), Istio for ML microservices and integrated enterprise monitoring stack (Prometheus, Grafana, ELK). also Containerized ML workloads using GCR, ACR, and ECR.
- General MillsML Engineer IINovember 2022 - August 2023 (9 months)• ● Designed and implemented an end-to-end ML pipeline using KFP v1 on Vertex AI Pipelines, covering data extraction, validation, preprocessing, training, evaluation, and deployment parameterized to serve both classification and regression use cases from a single codebase• ● Built custom containerized training jobs (AI Models, Time series models) on Vertex AI Training with Experiment tracking, and implemented a shared preprocessing layer ensuring consistent feature transformations across train, eval, and serving stages• ● Implemented a champion vs. challenger model governance pattern with configurable promotion thresholds, versioning in Vertex AI Model Registry, and metric labels for programmatic champion identification• ● Developed a FastAPI serving container deployed to Vertex AI Endpoints with auto-scaling, and configured Vertex AI Batch Prediction jobs with BigQuery as source and sink• ● Configured Vertex AI Model Monitoring v2 for training-serving skew and prediction drift detection, with per-feature thresholds, prediction sampling, and email/Pub-Sub alerting• ● Built a two-stage CI/CD system using GitHub Actions (lint, tests, pipeline compile gate on PRs) and Cloud Build (Docker build → GCS artifact push → Vertex AI pipeline submit on merge), with keyless GCP auth via Workload Identity Federation
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Education
- Executive MSAegis School of Business and Data Science2020Executive MS
- Cloud Professional Machine Learning EngineerGoogle2025Cloud Professional Machine Learning Engineer