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Vetted Amazon Bedrock Professionals

Pre-screened and vetted.

Amazon BedrockPythonDockerCI/CDAWSSQL
AM

Abhishikth Meesala

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in NLP, Generative AI, and fraud detection

Dallas, TX4y exp
PwCCampbellsville University

“At PwC, built and productionized an agentic RAG enterprise search assistant over 6M internal documents (8M embeddings), deployed across AWS and GCP. Drove major retrieval gains (72%→92% precision via BM25+dense hybrid with RRF and cross-encoder re-ranking), reduced hallucinations 30%, achieved <2s latency at 50–60K queries/month, and cut support tickets 30%—boosting adoption to 2,500 users by adding source-cited answers.”

A/B TestingAgileAnomaly DetectionApache AirflowApache SparkAuto-scaling+135
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AG

Ayush Gupta

Screened

Mid-level AI Engineer specializing in Agentic AI and Generative AI

6y exp
GeolabeDuke University

“Built and deployed a live LLM-powered platform that takes a LinkedIn job URL + resume and generates job-specific resumes and personalized outreach at scale, with production-grade logging/monitoring/retries on Vercel + Railway. Experienced with agent orchestration (AWS Bedrock/Strands, LangGraph, CrewAI) and rigorous AI workflow testing, plus stakeholder-facing prototypes like data lineage/metadata and NL-to-SQL + dashboard generation.”

A/B TestingAWSBigQueryCI/CDCloud ComputingComputer Vision+97
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DS

Dhruv Shah

Intern Software Engineer specializing in cloud data platforms and full-stack systems

Seattle, WA1y exp
Amazon Web ServicesStony Brook University
PythonJavaCC++GoTypeScript+89
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SA

Sai Aravind Yanamadala

Mid-Level Software Engineer specializing in cloud-native backend and LLM/RAG systems

New York, NY3y exp
LOCOMeXNYU
AgileAJAXAmazon BedrockApache KafkaAWSAWS Lambda+84
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SM

Shrijana Magar

Mid-level SDET specializing in test automation, API/microservices QA, and cloud-native CI/CD

Jersey City, NJ6y exp
AmazonLeeds Beckett University
PythonJavaPyTestSeleniumPlaywrightCypress+90
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NK

Naveen Kotha

Mid-level DevOps Engineer specializing in multi-cloud Kubernetes and CI/CD automation

Remote, USA5y exp
IntuitSouthern Arkansas University
Argo CDAuto-scalingAWSAWS CodePipelineAWS LambdaBash+97
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SJ

saniya jaswani

Senior Data Scientist specializing in Generative AI and NLP

9y exp
AcquiaIIT Jodhpur
A/B TestingAmazon CloudWatchAmazon EC2Amazon S3Amazon SageMakerAWS+71
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VK

Vikranth Kurugundla

Mid-level Software Engineer specializing in backend systems and LLM-powered AI applications

San Francisco, CA6y exp
Twist BioscienceUniversity of Texas at Arlington
PythonJavaC++SQLJavaScriptTypeScript+101
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SJ

Sanjana Jagarlamudi

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

6y exp
Capital OneUniversity of Florida
AgileAlgorithmsAmazon ECSAmazon EC2Amazon S3Amazon SQS+106
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SR

Saiteja Reddy

Mid-level AI/ML Engineer specializing in forecasting, MLOps, and generative AI

Remote, USA3y exp
Fisher InvestmentsUniversity of Missouri-Kansas City
A/B TestingAmazon BedrockAmazon EKSAmazon KinesisAmazon S3AWS+107
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YC

Yuan-Hao Chen

Screened

Intern Software Engineer specializing in backend systems and cloud infrastructure

Urbana, IL1y exp
ReDirectUniversity of Illinois Urbana-Champaign

“Backend-focused intern who owned real-time livestream features: live comment moderation using AWS Comprehend (sentiment/toxicity/PII) with safe fallbacks, plus AI-generated positive commentary via AWS Bedrock (Claude 3 Haiku). Emphasizes reliability/low-latency design, IAM troubleshooting, and disciplined GitOps-style CI workflows for reproducible deployments.”

PythonJavaScriptJavaC++Node.jsSpring Boot+82
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HT

Hassam Tariq

Screened

Mid-Level Software Engineer specializing in Cloud, GenAI, and Federal systems

Arlington, VA
DeloitteUniversity of Maryland, College Park

“Cloud-focused engineer experienced deploying and stabilizing complex production systems that span APIs, infrastructure, and automated workflows, with a strong observability and safe-release mindset (feature flags/canaries/rollbacks). Has hands-on, customer-facing incident leadership, including executing DR regional failover during an AWS us-east-1 outage to maintain service and reportedly save a client ~$10M.”

Amazon BedrockAmazon DynamoDBAmazon EC2Amazon EKSAmazon ECSAmazon S3+126
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SM

Shravya M

Screened

Senior AI/ML Engineer specializing in NLP, LLMs, and MLOps

Texas, USA6y exp
CVS HealthUniversity of North Texas

“LLM/agent workflow engineer with healthcare experience (CVS/CBS Health) who built and deployed a production call-insights platform using Azure OpenAI + LangChain/LangGraph, including sentiment and compliance checks. Demonstrates deep HIPAA/PHI handling (tenant-contained processing, redaction, RBAC/encryption/audit logging) and production rigor (testing, eval sets, validation/retries, autoscaling) to scale to thousands of transcripts.”

A/B TestingAgileAnomaly DetectionApache AirflowAzure Data FactoryAzure Machine Learning+139
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AK

Aashna Kunkolienker

Screened

Junior AI Engineer specializing in agentic workflows and ML platforms

San Ramon, CA2y exp
SearceNYU

“Building a production LLM/agent system for a leading US dental provider that extracts rules from payer handbooks/portals and EDI 271 responses to validate and improve patient cost estimates. Combines GCP stack (BigQuery, GKE, Cloud Run, Pub/Sub, Vertex AI) with strong agent reliability practices (observability, validator agents, grounding, PII/hallucination guardrails, confidence scoring) and has led non-technical customer stakeholders on enterprise ServiceNow↔Aha sync and AI-powered enterprise search/summarization.”

PythonCC++JavaJavaScriptSQL+105
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SK

Sasi Katamneni

Screened

Mid-level Data Scientist / AI-ML Engineer specializing in Generative AI and LLM applications

Dallas, TX5y exp
Baylor Scott & WhiteUniversity of North Texas

“Built a production GenAI-powered analytics assistant to reduce reliance on data analysts by enabling natural-language Q&A over Databricks/Power BI dashboards, backed by vector search (Pinecone/Milvus) and a Neo4j knowledge graph, including multimodal support via OpenAI Vision. Demonstrates strong real-world LLM reliability engineering with strict RAG, LangGraph multi-step verification, and Guardrails/custom validators, plus broad orchestration and production monitoring experience (Airflow, ADF, Step Functions, Kubernetes, Prometheus/CloudWatch).”

A/B TestingAgileAjaxAmazon API GatewayAmazon BedrockAmazon CloudWatch+267
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BK

Bharath kumar

Screened

Director-level AI & Data Science leader specializing in GenAI, LLMs, and MLOps

Draper, UT12y exp
ThorneBharathiar University

“ML/NLP engineer currently working in NYC on a system that connects complex unstructured data sources to deliver personalized insights, using embeddings + vector DB retrieval and a RAG architecture (LangChain, Pinecone/OpenSearch). Strong focus on production constraints—especially low-latency retrieval—using FAISS/ANN, PCA, index partitioning, and Redis caching, plus PEFT fine-tuning (LoRA/QLoRA) and KPI/SLA-driven promotion to production.”

A/B TestingAPI DevelopmentAPI TestingApache HadoopApache HiveApache Kafka+251
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RG

Raja Gurugubelli

Screened

Mid-level GenAI Engineer specializing in production RAG and LLM fine-tuning

San Jose, California5y exp
eBayTexas Tech University

“LLM engineer who built a production seller-support RAG system at eBay using hybrid retrieval (BM25 + Pinecone vectors) with Cohere reranking, LangGraph orchestration, and citation-grounded answers. Strong focus on reliability: semantic/structure-aware chunking, automated Ragas-based evaluation with nightly regressions, and production observability (LangSmith) plus drift monitoring (Arize). Also implemented a multi-agent fraud pipeline with AutoGen using JSON-schema contracts and explicit termination conditions.”

PythonSQLBashGPT-4LoRALangChain+130
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SA

Shiva Adusumilli

Screened

Mid-level Software Engineer specializing in AI agents, backend systems, and data engineering

4y exp
AmazonGeorgia State University

“Amazon engineer who built a production AI agent platform (Python/AWS Strands on Bedrock) that lets teams create tool-using, multi-agent workflows—e.g., agents that auto-triage and resolve customer support tickets by reading internal documentation and collaborating with a research agent. Previously worked in Deloitte on IAM using Ping Identity/Ping DaVinci orchestration, and applies orchestration thinking plus structured evaluation (LLM-as-judge, surveys, automated tests) to improve agent reliability.”

PythonC++JavaJavaScriptTypeScriptMySQL+82
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UJ

Utkarsh Joshi

Screened

Senior Data Scientist specializing in ML, NLP, and GenAI analytics

Remote, US7y exp
University of MinnesotaUniversity of Minnesota

“Built and deployed an LLM-powered analytics assistant enabling business users to ask questions in plain English and receive validated Spark SQL executed in Databricks, with a Streamlit/Flask UI. Addressed strict client schema-privacy constraints by implementing a RAG strategy and ultimately leveraging AWS Bedrock and fine-tuned reference docs. Also has production ML pipeline experience using Docker + Airflow and AWS (S3/ECS/EC2) for financial classification models.”

PythonPandasNumPyScikit-learnRSQL+107
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DA

Divyam Agrawal

Screened

Mid-level Machine Learning Engineer specializing in LLMs and NLP classification systems

Seattle, WA4y exp
Affinity SolutionsUniversity of Washington

“Internship experience building a production RAG+LLM pipeline to map messy card transaction descriptions to merchant brands, including a custom modified-ROUGE evaluation approach for weak/variant ground truth. Improved scalability and cost by moving from a managed LLM endpoint (e.g., Bedrock) to self-hosted vLLM, and orchestrated massive embedding backfills (5,000+ files, 10B+ rows) using an Airflow-triggered SQS + ECS worker architecture with robust retry/DLQ handling.”

A/B TestingAPI DesignAWSAWS CloudFormationAWS LambdaAuto-scaling+110
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HK

Harshitha Kotari

Screened

Mid-level Data/ML Engineer specializing in NLP, GenAI, and scalable data pipelines

5y exp
AbbottClarkson University

“AI/ML engineer with production experience building LLM-powered document intelligence and customer support systems in healthcare/insurance, emphasizing high-accuracy RAG, long-document processing, and robust monitoring/fallback mechanisms. Also automates and scales ML lifecycle workflows using Apache Airflow and Kubeflow, and partners closely with non-technical operations stakeholders to drive adoption.”

PythonRSQLJavaMATLABHTML+148
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