Vetted Amazon CloudWatch Professionals

Pre-screened and vetted.

SG

Mid-level Full-Stack Python Developer specializing in Healthcare IT

NJ, USA5y exp
Johnson & JohnsonUniversity of Dayton

Backend/AI engineer with Johnson & Johnson experience building data-heavy payer/claims analytics services (Python/FastAPI, PostgreSQL, AWS) and optimizing them under peak ingestion load via indexing/query tuning and caching. Also shipped an end-to-end RAG feature for clinicians to extract insights from unstructured clinical notes, using constrained prompts and retrieval-confidence guardrails to prevent hallucinations.

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AS

Mid-level GenAI & Data Engineer specializing in agentic AI systems and AWS Bedrock

Fort Mill, SC4y exp
OneData Software SolutionsNortheastern University

At onedata, built and deployed an LLM-powered, multi-agent analytics platform on AWS Bedrock that lets users create Amazon QuickSight dashboards through natural-language conversation, cutting dashboard build time from ~30 minutes to ~5 minutes. Strong in production concerns (observability, token/cost tracking, model tradeoffs) and in bridging business + technical work, owning pre-sales pitching through delivery with an engineering management background focused on AI product management.

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ST

sreeya tula

Screened

Senior Backend Engineer specializing in Python microservices and cloud-native systems

Texas, United States10y exp
VerizonJawaharlal Nehru Technological University, Hyderabad

Backend/data platform engineer who owned a FastAPI + Kafka microservice in Verizon’s billing pipeline, handling high-volume usage ingestion/validation/enrichment with strong observability and CI/CD on AWS EKS. Demonstrated measurable performance gains (latency down to ~120–150ms; Kafka throughput +30–40%; DB CPU -25%) and led an on-prem ETL-to-AWS migration using Terraform, parallel validation, and phased cutover with zero downtime.

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HP

Mid-level AI/ML Engineer specializing in fraud detection and healthcare predictive analytics

Reston, VA4y exp
TruistUniversity of Central Missouri

ML/AI engineer with production experience in high-scale banking fraud detection at Truist, building an end-to-end pipeline (Airflow/AWS Glue/Snowflake, PyTorch/sklearn) with automated retraining and Kubernetes-based deployment; delivered measurable gains (22% fewer false positives, 15% higher recall) and reduced manual ops ~40%. Also partnered with clinicians at Kellton to deploy an LLM system for summarizing/classifying clinical notes, improving review time and decision speed.

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AR

Mid-level DevOps/Cloud Engineer specializing in AWS, GCP, Kubernetes, and CI/CD

Dallas, TX4y exp
GEICOWebster University

Infrastructure/DevOps engineer (Geico) focused on AWS and Kubernetes at production scale. Has hands-on experience building secure GitHub Actions CI/CD for EKS, provisioning core AWS infrastructure with Terraform/CDK, and leading end-to-end incident response with post-incident automation to prevent recurrence; no direct IBM Power/AIX/PowerHA experience.

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UO

Mid-Level Software Engineer specializing in backend, distributed systems, and AI/LLM platforms

Prairie View, TX4y exp
Prairie View A&M UniversityPrairie View A&M University

Built and shipped AI-powered workflow automation at Oracle, including an MCP-based agentic workflow with tool-calling and guardrails, plus Grafana monitoring and Confluence documentation. Also led a Django monolith-to-microservices migration at Chamsmobile using blue-green deployment and load balancer traffic splitting to avoid regressions while modernizing production systems.

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Aakanksha Desai - Junior Full-Stack Software Engineer specializing in React, Kubernetes, and AI-powered apps in Scottsdale, Arizona

Junior Full-Stack Software Engineer specializing in React, Kubernetes, and AI-powered apps

Scottsdale, Arizona2y exp
onsemiArizona State University

Backend/DevOps-leaning engineer managing multiple customer service platforms end-to-end (requirements through deployment). Built an in-house Python monitoring/alerting solution for Salesforce-to-Java contact sync jobs (Snowflake dependencies) that increased uptime ~60%, and helped modernize delivery by moving the team from manual releases to automated Jenkins-based deployments while coordinating an Oracle EBS→Fusion transition with business/data/IT stakeholders.

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Prasad Krishna - Mid-level Full-Stack Developer specializing in healthcare analytics and microservices in Remote, USA

Mid-level Full-Stack Developer specializing in healthcare analytics and microservices

Remote, USA4y exp
HCA HealthcareUniversity of North Texas

Built and maintained an air-quality prediction backend in Python/Flask that serves offline-trained ML models to a React dashboard via JSON REST APIs. Demonstrates strong performance focus across the stack—low-latency inference under load, SQLAlchemy/Postgres query optimization, multi-tenant data isolation, and caching/background task strategies for high-throughput systems.

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Visaj Kapadia - Mid-Level Full-Stack Developer specializing in AWS and scalable web platforms in Santa Monica, CA

Visaj Kapadia

Screened

Mid-Level Full-Stack Developer specializing in AWS and scalable web platforms

Santa Monica, CA5y exp
Just Slide MediaCalifornia State University

Software engineer with hands-on AWS experience optimizing an email campaign delivery system—re-architected a monolithic worker into multi-threaded/multi-worker ECS components to boost throughput ~600% (5 to 35 emails/sec). Comfortable debugging production issues (e.g., SQS/EventBridge policy misconfiguration) and emphasizes maintainable delivery via design docs, TDD, versioned APIs, and strong test coverage.

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Alicia Geng - Entry-level AI/ML Engineer specializing in AWS MLOps and computer vision in Worcester, MA

Alicia Geng

Screened

Entry-level AI/ML Engineer specializing in AWS MLOps and computer vision

Worcester, MA0y exp
Applied Industrial MeasurementsNortheastern University

Built and shipped a production RAG question-answering system using LangChain/OpenAI, Docker, and FastAPI, then reduced hallucinations through disciplined retrieval tuning and constrained prompting. Also implemented a custom evaluation framework (QA-pair dataset) to measure faithfulness/relevance and deployed containerized ML microservices on AWS ECS/Fargate with ALB and rolling, zero-downtime updates.

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Ramyasree K - Mid-level DevOps/Cloud Engineer specializing in AWS infrastructure automation in Boston, MA

Ramyasree K

Screened

Mid-level DevOps/Cloud Engineer specializing in AWS infrastructure automation

Boston, MA4y exp
Mass General BrighamAustralian National University

Frontend engineer with experience building a large-scale React + TypeScript administrative dashboard for an e-commerce platform, using Redux Toolkit plus TanStack Query to separate UI and server state. Emphasizes quality at scale through CI/CD automation, Jest/integration testing, and performance techniques like code splitting and caching, with experience coordinating integration across multiple teams.

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makarand pundlik - Mid-Level Software Engineer specializing in AWS serverless and Node.js microservices in New York, NY

Mid-Level Software Engineer specializing in AWS serverless and Node.js microservices

New York, NY2y exp
BestworkNorth Carolina State University

Software intern at BestWork who owned an AI-powered sales performance chatbot end-to-end: React/Material UI frontend, TypeScript AWS Lambda backend, and AWS Bedrock (Llama 3) + OpenSearch knowledge base over Salesforce/HubSpot data with Slack-based weekly summaries. Worked directly with the CTO in a high-ambiguity environment, including building an audio bot from scratch just in time for a client demo, and implemented metadata-based retrieval to handle multi-team knowledge base constraints.

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Satwika Boppudi - Mid-level Site Reliability Engineer specializing in AWS cloud and AI-driven backend systems in Houston, TX

Mid-level Site Reliability Engineer specializing in AWS cloud and AI-driven backend systems

Houston, TX7y exp
CignaUniversity of North Texas

Backend/AI engineer in healthcare/insurance (mentions Cigna) who has shipped production systems spanning high-reliability APIs, async job architectures (Celery), and LLM/RAG features. Built an LLM document assistant with Terraform-managed AWS infra, semantic search retrieval, and strict permissioning/audit logs, and designed an automated prior-authorization workflow with human-in-the-loop escalation and compliance-driven thresholds.

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Sumanth Gottipati - Mid-level Full-Stack Software Engineer specializing in cloud-native microservices and FinTech in New York, NY

Mid-level Full-Stack Software Engineer specializing in cloud-native microservices and FinTech

New York, NY4y exp
Delta Air LinesVirginia University of Science and Technology

At Delta Airlines, built and shipped a production LLM-powered semantic search/troubleshooting assistant over maintenance logs and operational documentation using OpenAI embeddings and a vector database. Implemented hybrid ranking, query enrichment, and structured filters to improve relevance ~35% while optimizing latency via caching and vector tuning. Also designed a scalable Kafka + AWS (Lambda/SQS) ingestion pipeline with strong reliability/observability and an eval loop using real engineer queries and human review.

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Shravani Koona - Junior Full-Stack Software Engineer specializing in cloud-native microservices in United States

Junior Full-Stack Software Engineer specializing in cloud-native microservices

United States3y exp
AssurantUniversity of Cincinnati

Backend/data engineer with experience at Assurant and Capgemini, focused on reliability and performance at scale. Improved high-latency backend APIs by adding and iterating on a Redis caching layer driven by CloudWatch/monitoring metrics, and built scalable BI pipelines that normalize messy multi-source enterprise data with strong observability and error handling. Familiar with LLM/RAG architecture and practical guardrails, though has not yet shipped an LLM feature to production.

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SREYAS GANGJI - Mid-level Software Engineer specializing in AI/ML backend systems in Chicago, IL

SREYAS GANGJI

Screened

Mid-level Software Engineer specializing in AI/ML backend systems

Chicago, IL4y exp
ZSDePaul University

AI/data engineer at ZS Associates focused on production-grade agentic systems, FastAPI microservices, and cloud-native ETL/RAG pipelines at significant scale. They’ve built multi-agent validation and diagnostic workflows inspired by their Copilot/KUBEPILOT AI work, supporting 500K+ records per day while improving ML inference performance by ~30% and cutting manual troubleshooting by 60%.

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Dishank Kailash Oza - Mid-level Software Engineer specializing in distributed systems and cloud infrastructure in Santa Clara, CA

Mid-level Software Engineer specializing in distributed systems and cloud infrastructure

Santa Clara, CA4y exp
Toir Inc.Santa Clara University

Engineer with a thoughtful, production-oriented approach to AI-assisted development, including multi-agent workflows for planning, coding, review, testing, and debugging. Stands out for treating AI systems like distributed pipelines with explicit interfaces, validation layers, and guardrails to improve reliability and reduce hallucinations.

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Rambabu Dhanavath - Mid-level Software Engineer specializing in backend and cloud-native microservices in United States

Mid-level Software Engineer specializing in backend and cloud-native microservices

United States5y exp
HumanaIndiana Tech

Backend/cloud engineer with 5 years of experience who has shipped a production internal ops LLM assistant end-to-end using Spring Boot microservices on AWS. Stands out for designing controlled, safety-first agent orchestration with deterministic tool access, Redis/DB-backed recoverable state, and strong observability/evaluation practices to improve reliability in production.

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Ramya Sree Kanijam - Mid-level Software Engineer specializing in backend systems, cloud, and AI pipelines in Remote, USA

Mid-level Software Engineer specializing in backend systems, cloud, and AI pipelines

Remote, USA3y exp
NetomiTexas A&M University-Corpus Christi

Built and owned an end-to-end AI-driven content enrichment pipeline for a news workflow, using n8n, LLM agents, and external APIs to automate ingestion, deduplication, categorization, and approval routing. Stands out for production-minded AI systems work: they improved reliability with schema validation, retries, idempotency, and monitoring, while automating 90% of processing and cutting duplication errors by 95%+.

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Dinesh Guguloth - Mid-level Software Engineer specializing in full-stack cloud-native and AI applications in New York, NY

Mid-level Software Engineer specializing in full-stack cloud-native and AI applications

New York, NY4y exp
AccentureCleveland State University

Full-stack engineer with cloud and GenAI experience who has owned production features end-to-end, including a reporting dashboard optimized from 14s to 5s using query/API refactoring and monitored via AWS CloudWatch. Also productionized an OpenAI-powered chatbot using LangChain with prompt design, guardrails, and evaluation via production logs and user feedback, and has led incremental legacy-to-microservices modernization with parallel run to avoid regressions.

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DK

Dhruv Kumar

Screened

Senior Backend Developer specializing in Python and AWS cloud-native systems

New York, NY9y exp
SuperblocksUniversity of California

Backend/data engineer with production experience building Python FastAPI services and AWS-native data pipelines. Has delivered containerized and serverless workloads (ECS/EKS/Lambda) with Terraform-based IaC, strong reliability patterns (JWT/RBAC, retries/circuit breakers, observability), and AWS Glue ETL into S3/Redshift. Demonstrated measurable SQL performance wins (40–50s to <4s) and owned real pipeline incidents through detection, mitigation, and prevention.

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AT

Abdul Tanimu

Screened

Senior Full-Stack Software Engineer specializing in cloud-native web applications

Houston, TX7y exp
TechwaveUniversity of North Texas

Backend/data engineer who built a production booking platform on FastAPI microservices (Postgres/Redis/gRPC) and delivered AWS infrastructure spanning Lambda, ECS, SQS, and Glue-to-Redshift analytics. Demonstrated measurable SQL optimization (10 minutes to <40 seconds) and strong operational ownership through monitoring, incident response, and schema-evolution hardening.

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VV

Vaidik Vyas

Screened

Mid-Level AI Backend Engineer specializing in Python, LLM/RAG, and healthcare/insurance platforms

Franklin, NJ5y exp
MetLifeNJIT

AI Backend Engineer in MetLife’s claims technology group who built and deployed a production LLM-based decision support system that helps claim adjusters quickly find relevant policy rules from long PDFs and historical notes. Designed it as multiple production-grade services with retrieval-first guardrails, continuous validation, and Airflow-orchestrated pipelines for ingestion, embeddings, and vector index updates to keep the system reliable as policies and data evolve.

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