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Vetted AWS Professionals

Pre-screened and vetted.

AWSPythonDockerCI/CDSQLPostgreSQL
YA

Yousif Aluzri

Screened

Senior UNIX/Linux Systems Engineer specializing in telecom mobility and automation

Portland, OR29y exp
CiscoUniversity of Colorado Boulder

“Commercial UNIX specialist and former tech lead for a UNIX-based telco appliance spanning 11 SPARC Solaris servers, with strong Solaris troubleshooting (truss/iostat/netstat/snoop) and extensive shell scripting automation for safer, more consistent operations. Has executed multiple Solaris major-version migrations (6→8→10→11) and brings broad cross-UNIX platform experience (Solaris/SunOS/HP-UX/IRIX/OSF/1), while actively looking to deepen hands-on AIX/IBM Power expertise.”

UNIXLinuxAWSKubernetesDockerGit+158
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VS

Vighanesh Sharma

Screened

Mid-level Software Engineer specializing in cloud-native platforms and healthcare systems

Dallas, TX3y exp
PlayStationUniversity of Texas at Dallas

“Backend engineer with healthcare-domain experience building a security-critical RBAC identity/authentication/authorization microservice suite used across hospital imaging platforms (X-Ray, Ultrasound, etc.). Demonstrates strong security mindset (mTLS, cert hygiene, JWT, pen-testing collaboration) and pragmatic scaling/reliability practices (Nginx load balancing, Redis caching, automated tests, canary rollouts).”

AgileAlgorithmsAngularAWSAWS LambdaBigQuery+101
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CM

Chris Michaelson

Screened

Executive Engineering Leader specializing in cloud, DevSecOps, and large-scale platform modernization

Tampa, FL17y exp
PwCOregon Institute of Technology

“Co-founded a Digital Loss Prevention (DLP) startup and raised $6M in seed funding by showcasing a controlled, laptop-based technology demo. Post-funding, drove MVP planning and execution by sequencing operations and assembling a team to build an appliance MVP, using an iterative build/evaluate/visualize approach.”

LeadershipVendor ManagementContract NegotiationProduct ManagementProject ManagementMicroservices+118
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TM

Thomas Majchrowski

Screened

Executive Technology Leader (CTO) specializing in SaaS, AI platforms, and M&A integration

Irvine, CA22y exp
Foundation AIUSC

“Entrepreneurial builder who created a SaaS system for insurance sales and developed in-house sales/marketing platforms, prioritizing a robust backend that drove over $500k in immediate sales before expanding features. Emphasizes lean, high-impact execution with strong focus on optimization, barrier management, and contingency planning.”

AgileArtificial IntelligenceCloud ComputingComplianceProduct ManagementQuality Assurance+107
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SK

Sammed Kamate

Screened

Mid-level Software Engineer specializing in FinTech and AI/LLM systems

3y exp
JPMorgan ChaseUC San Diego

“Backend engineer with experience in both regulated healthcare and finance: built a multi-agent RAG system to generate FDA regulatory approval documents for biomedical devices, improving retrieval accuracy via hybrid search (semantic + BM25) and hierarchical chunking. Previously at JPMorgan Chase, led a Java microservice refactor and AWS migration using Elasticsearch-first patterns, caching, and safe rollout strategies (parallel runs, canary, blue-green) in asset/wealth management.”

JavaPythonCC++JavaScriptSpring Boot+69
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IK

Ishaan Kandamuri

Screened

Intern Aerospace/Robotics Engineer specializing in GNC, autonomy, and sensor fusion

Champaign, IL3y exp
AndurilUniversity of Illinois Urbana-Champaign

“University robotics researcher graduating May 2026 who integrated an Intel RealSense D435i onto a TurtleBot3 (Jetson Nano) and built a ROS 2 node + OpenCV pipeline to feed color-based cues into navigation/path planning for RL grid-world experiments. Has hands-on ROS 2 experience spanning Gazebo simulation, Nav2, ros2_control, multi-robot namespacing, and ROS1-to-ROS2 bridging, plus CI/CD exposure (GitLab CI, Jenkins) from internships including aircraft navigation work.”

CC++CI/CDData Structures & AlgorithmsDeep LearningGazebo+96
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VP

Vismay Patel

Screened

Senior AI & Machine Learning Engineer specializing in NLP, GenAI, and MLOps

Berkeley, CA7y exp
Kaiser PermanenteSan Francisco State University

“ML/GenAI practitioner with healthcare domain depth who built and deployed a production cervical-cancer EMR classification system using a hybrid rules + medical BERT approach, optimized for high recall under severe class imbalance and PHI constraints. Experienced running end-to-end production ML/LLM pipelines with Apache Airflow (validation, promotion/rollback, monitoring, retraining) and partnering closely with clinicians to calibrate thresholds and implement human-in-the-loop review.”

PythonSQLJavaGoJavaScriptREST APIs+121
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DV

Devisri Veeramachaneni

Screened

Senior Software Engineer specializing in cloud backend systems and LLM-powered agents

Seattle, WA5y exp
AmazonSan José State University

“Amazon Fire TV Devices engineer who built and shipped a production LLM-powered lab triage and validation system that grounds recommendations in internal runbooks/known-issue data and pushes evidence-based actions via dashboards and Slack. Emphasizes safety and measurability with structured JSON outputs, replay-based evaluation on historical incidents, and production metrics (e.g., disagreement rate and time-to-first-action), plus cost/latency optimizations like caching, batching, and rule-based fast paths.”

PythonJavaJavaScriptTypeScriptC++Bash+130
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RS

Rohith Sadanala

Screened

Mid-level Machine Learning Engineer specializing in Generative AI and MLOps

Missouri, USA3y exp
AirbnbUniversity of South Florida

“LLM/agent engineer who has shipped production RAG chatbots in sustainability-focused domains, including a packaging recommendation assistant that standardized messy user inputs and used Pinecone-backed retrieval over product/regulatory data. Experienced orchestrating end-to-end ML workflows with Airflow and AWS Step Functions/Lambda, emphasizing reliability (property-based testing, circuit breakers, OpenTelemetry) and measurable performance (latency/cost). Partnered closely with non-technical leadership to ship 3 weeks early, driving adoption by 150+ businesses and ~20% reported waste reduction.”

A/B TestingAmazon BedrockAmazon EC2Amazon EKSAmazon RDSAmazon S3+154
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TP

Tara Petrin

Screened

Executive Marketing Leader specializing in MarTech, CRM, and digital growth

Los Angeles, CA14y exp
California State University, Los AngelesBerklee College of Music

“Marketing/CRM professional who has built a CRM and marketing department from scratch—starting with Excel, then integrating into a formal CRM—using segmentation by geography (zip code/geofencing) and profession. Has run retention and lifecycle programs across both B2B and B2C via email/newsletters/social, with A/B testing experience and exposure to major clients including Fox and Sony.”

CRMDigital MarketingProduct ManagementProject ManagementRecruitingData Analysis+70
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AM

Anand Madhusoodanan

Screened

Executive HR Tech & Salesforce Architect specializing in AI-driven recruiting automation

Bengaluru, India9y exp
Taylor RecruitGeorgia Tech

“Co-founder of an HR tech startup who took an LLM-centered skill intelligence engine from prototype to production to deliver explainable, skill-based resume insights as an alternative to black-box ATS screening. Previously worked in consulting (Deloitte, Stand Up, Brilio), with experience in technical demos/workshops, pre-sales scoping, and supporting large deal cycles (including a ~$1M UK automotive client).”

Artificial IntelligenceAWSAlgorithmsBERTC++Data Modeling+82
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NK

Nandini Kosgi

Screened

Mid-level AI/ML Engineer specializing in LLMs, RAG, and fraud/risk analytics in Financial Services

PA, USA4y exp
Capital OneRobert Morris University

“Built and shipped a production-grade GenAI Fraud & Compliance Investigation Copilot for a large US bank, integrating OCR docs, structured data, and prior case history to generate grounded, regulator-friendly summaries and red-flag highlights. Demonstrates strong end-to-end LLM systems engineering (LangGraph/LangChain, hybrid retrieval with FAISS+BM25, guardrails/citations, streaming/latency optimization) plus rigorous evaluation and close partnership with compliance stakeholders.”

A/B TestingAnomaly DetectionApache HadoopApache HiveApache KafkaApache Spark+137
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MP

Mahesh Purushothaman

Screened

Senior Director of Software Engineering specializing in cloud-native microservices for streaming platforms

San Jose, CA20y exp
XperiAnna University

“Engineering leader who drove TiVo IPTV’s client-facing API modernization from a monolith to AWS-based microservices (API Gateway, Lambda, EKS, Kafka, DynamoDB/RDS), including phased/blue-green production routing of millions of calls. Emphasizes org scaling through skill-based hiring, mentorship, and a you-build-you-run ownership culture, while balancing technical leadership with executive stakeholder communication and budgeting.”

JavaGoJavaScriptSpring BootSpring FrameworkAWS+184
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CO

Cornelius O'Donnell

Screened

Director-level Engineering & Program Leader specializing in AI product platforms

San Diego, CA25y exp
Studentsidekiq.comUniversity of San Diego

“Technical Program Manager and one of three internal "founders" of HP’s Hardware-as-a-Service home printer subscription initiative, spanning DTC shipping, simplified setup, ink replenishment, and warranty coverage. Led roadmap definition/execution, scaled delivery rapidly to 15+ scrum teams (including vendors) with SAFe-like coordination and shared engineering standards, and drove key architecture trade-offs (building an interim subscription management service) to accelerate time-to-market by about a year.”

AndroidAutomationAWSChange ManagementCI/CDCollaboration+125
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VD

Varshith Dupati

Screened

Mid-level Software Engineer specializing in AWS, full-stack development, and AI data systems

Seattle, Washington3y exp
AmazonArizona State University

“Backend engineer who built a Python-based data profiling/statistics platform processing up to 50M rows and ~300 metrics, using a DAG execution model, multithreading, and smart caching to cut processing time by up to 70%. Also improved PostgreSQL query performance from 12s to 2s via indexing/query rewrites, integrated an LLM (LangChain + OpenAI) for explainable “chat with the pipeline” functionality, and designed an AWS EC2+SQS architecture for scalable, isolated per-user processing.”

JavaJUnitSpring BootPythonCC+++84
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NS

Nagatheja Sharaf

Screened

Mid-Level Software Engineer specializing in cloud-native systems, automation, and LLM-enabled robotics

Sunnyvale, CA6y exp
AmazonIndiana University Bloomington

“React-focused engineer who built a full-stack analytics/test-metrics dashboard (React frontend + Python backend) and turned common UI pieces (data tables, filter panels, chart wrappers) into a reusable internal component library with docs, examples, and basic tests. Strong on profiling-driven performance optimization (React Profiler, memoization) and on owning ambiguous internal-tool projects end-to-end; now planning to package internal patterns into public open-source components.”

PythonPandasNumPySciPyJavaScriptC+126
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SS

Sahithi S

Screened

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

Texas, USA6y exp
NVIDIAKennesaw State University

“Built and deployed a production generative AI chatbot at NVIDIA using LangChain + GPT-3 integrated with internal data sources, cutting response time nearly in half and improving CSAT by ~12 points. Also delivered LLM-driven QA tools by fine-tuning Hugging Face transformer models and deploying via an AWS-based pipeline (Lambda/Glue/S3) with orchestration (Airflow/Step Functions), CI/CD, Kubernetes, and monitoring (MLflow/Splunk/Power BI).”

PythonSQLJavaSpring BootFastAPIFlask+108
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KG

kunj Golwala

Screened

Junior Robotics Perception Engineer specializing in autonomous navigation and robot learning

College Park, MD2y exp
GAMMA LabUniversity of Maryland, College Park

“Robotics software/perception engineer with production AMR experience at Symbotic, building a real-time SKU case re-identification pipeline used in high-volume Walmart/Target warehouse operations. Strong in ROS2 + Docker deployments on Jetson (TensorRT quantization) and system-level performance debugging, including cutting inference latency from ~13s to ~2s through architecture changes. Also has lab experience integrating SLAM/MPPI/behavior trees for rule-compliant navigation and distributed perception-to-UR5e manipulation systems (MoveIt/ros_control) with multi-camera sensing and 3D reconstruction.”

PythonC++MATLABRTypeScriptReinforcement Learning+127
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PP

Prafull Prajapati

Screened

Mid-Level Backend/Cloud Engineer specializing in AWS/Azure microservices

Richardson, TX4y exp
AmazonUniversity of Texas at Dallas

“Full-stack engineer who built a smart loan approval workflow for a Goldman Sachs hackathon (React/Node/Express/Postgres) including KYC handling, reviewer queues, and an ML-based pre-scoring/auto-reject step. Also has Amazon internship experience driving a customer-facing long-polling change that reduced empty requests by 84%, and demonstrates strong system design depth in real-time voice + LLM streaming architectures.”

.NETAPI GatewayAngularAWSAWS CloudFormationAWS IAM+87
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AA

Akanksha Agrawal

Screened

Mid-Level Full-Stack Software Engineer specializing in event-driven data platforms

Bangalore, India5y exp
SAPUniversity of Illinois Urbana-Champaign

“Backend engineer with SAP experience modernizing a legacy Flask/PostgreSQL product master data platform into a modular, stateless, containerized service with Kafka-based background processing and improved observability. Also has hands-on academic/side-project experience operationalizing ML (NLP retrieval with TF-IDF/BERT via FastAPI and CV lane-edge detection inference APIs using PyTorch).”

AgileAngularApache CassandraAPI DesignAWSAWS Lambda+110
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LT

Leela Tikkisetty

Screened

Mid-level Software Engineer specializing in ML platforms and cloud-native backend systems

San Francisco, CA5y exp
City and County of San FranciscoSan Francisco State University

“Software engineer with experience at Google and the City and County of San Francisco building production AI systems, including a RAG-based internal support chatbot and ML-driven ticket priority tagging. Has scaled data/ML platforms with Airflow on GCP (1M+ records/day, 99.9% SLA) and deployed multi-component systems with Docker and Kubernetes (GKE), using modern LLM tooling (LangChain/CrewAI, Claude/OpenAI, Pinecone/ChromaDB, Bedrock/Ollama).”

A/B TestingAgileAmazon BedrockAmazon EKSAmazon RedshiftAuthentication+198
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BP

Byron Pineda

Screened

Staff/Lead Data Scientist specializing in Generative AI, NLP/LLMs, and MLOps

Pascagoula, MS10y exp
TuringMississippi State University

“Lead Data Scientist (10+ years) with recent work in healthcare data: built production pipelines that unify EHR, genomics, and clinical notes using NLP (spaCy/BERT/BioBERT) and scalable Spark-based processing. Also led development of domain-specific LLM/NLP systems for chatbots and semantic search, deploying models via FastAPI/Flask and improving retrieval with FAISS-backed, fine-tuned clinical embeddings and RAG-style workflows.”

PythonRSQLPandasNumPyScikit-learn+132
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RR

Rushi Reddy Lambu

Screened

Mid-level AI/ML Engineer specializing in Generative AI and MLOps

Remote, USA5y exp
McKinsey & CompanyUniversity of North Texas

“GenAI/LLM engineer and architect who built and deployed a production generative AI financial forecasting and scenario analysis platform at McKinsey, leveraging Claude (Anthropic), LangChain, Airflow, MLflow, and AWS SageMaker. Demonstrates strong LLMOps/MLOps rigor (monitoring, drift detection, automated retraining) and deep experience implementing global privacy controls (GDPR, differential privacy, audit trails) while partnering closely with finance executives and legal/IT stakeholders.”

PythonSQLRJavaC++Bash+192
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TS

Travoy Spelling

Screened

Senior Data Scientist / ML Engineer specializing in GenAI, LLMs, and NLP

Texarkana, TX10y exp
TredenceUniversity of Texas at Austin

“ML/NLP engineer focused on production GenAI and data linking systems: built a large-scale RAG pipeline over millions of support docs using LangChain/Pinecone and added a LangGraph-based validation layer to cut hallucinations ~40%. Also built scalable PySpark entity resolution (95%+ accuracy) and fine-tuned Sentence-BERT embeddings with contrastive learning for ~30% relevance lift, with strong CI/CD and observability practices (OpenTelemetry, Prometheus/Grafana).”

A/B TestingAPI DevelopmentAWSAWS LambdaAWS Step FunctionsAzure Data Factory+247
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