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Vetted Kubernetes Professionals

Pre-screened and vetted.

KubernetesDockerPythonCI/CDAWSPostgreSQL
MH

MdMahedi Hasan

Screened

Senior Machine Learning & Computer Vision Researcher specializing in vision-language models

Morgantown, WV7y exp
West Virginia UniversityWest Virginia University

“Developed and deployed CaptionFace, a production vision-language system that boosts low-resolution/surveillance face recognition by generating discriminative natural-language captions (ViT encoder + GPT-2 decoder) and enabling text-to-face retrieval and zero-shot recognition. Orchestrated distributed training on Kubernetes with MLflow tracking, mixed-precision optimization, and comprehensive evaluation including out-of-domain robustness; collaborated with non-technical NSF project stakeholders via demos, visualization, and clear documentation.”

Machine LearningComputer VisionLoRALSTMPythonC+++64
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LL

LakshmiCharan Lingisetty

Screened

Mid-level AI/ML Engineer & Data Scientist specializing in NLP and Generative AI

Overland Park, KS5y exp
CenteneUniversity of Central Missouri

“Built and deployed an agentic RAG platform at Centene Health to support healthcare claims and complaints workflows (Q&A for claims agents, executive complaint summarization, and compliance triage/classification). Experienced in LangChain/LangGraph orchestration, production deployment on AWS with FastAPI/Docker/Kubernetes, and implementing HIPAA-compliant guardrails to reduce hallucinations and ensure explainable outputs.”

PythonSQLRCC++Java+117
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TP

Tapan Patel

Screened

Junior Machine Learning Engineer specializing in MLOps and real-time systems

Gujarat, India1y exp
Macrosoft CreationsNortheastern University

“Built and shipped a production GPT-4 + RAG customer support chatbot that materially improved support operations (response time 4 hours to <3 minutes; ~65% tier-1 ticket automation). Demonstrates strong end-to-end LLM engineering across retrieval (Sentence Transformers/Pinecone), safety (multi-layer moderation), cost/latency optimization (caching/streaming, Celery/Redis), and rigorous evaluation/monitoring (shadow deploys, Datadog, 500+ test cases), plus proven stakeholder buy-in leading to 80% adoption.”

A/B TestingAmazon EC2Amazon S3AWS LambdaApache AirflowApache Cassandra+94
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JK

Jaykumar Kotiya

Screened

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

Boston, MA6y exp
CitiusTechNortheastern University

“Built and deployed production LLM systems for summarizing sensitive legal and financial documents, emphasizing GDPR-aligned privacy controls and scalable hybrid cloud architecture. Experienced with Kubernetes/Airflow orchestration and rigorous testing/monitoring practices, and has delivered measurable business impact (18% conversion lift) by translating AI outputs for non-technical marketing stakeholders.”

AgileApache HadoopApache KafkaApache SparkAWSAWS Lambda+181
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TM

Trinath Manikanta Batta

Screened

Junior AI/ML Engineer specializing in healthcare and financial risk modeling

Bristol, PA3y exp
DermanutureUniversity of South Florida

“Built and productionized a clinical NLP + patient risk stratification platform at Dermanture, combining Spark/PySpark pipelines with BERT/BioBERT for entity extraction and text classification and downstream risk models in TensorFlow/scikit-learn. Experienced running regulated, auditable ML workflows with Airflow and AWS SageMaker, emphasizing data validation (Great Expectations), drift monitoring, and explainability (SHAP) to drive clinician trust and adoption.”

A/B TestingAgileAnomaly DetectionAPI DevelopmentAWS GlueAWS Lambda+95
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SK

Sruthi Kondapalli

Screened

Intern Software Engineer specializing in backend systems and Generative AI

Colorado, USA2y exp
Sports MediaIllinois Institute of Technology

“Built and deployed a scalable, production-ready LLM knowledge assistant using a RAG architecture (LangChain + vector store/FAISS) to replace keyword search for internal documents. Demonstrates hands-on expertise in hallucination reduction and retrieval quality improvements through semantic chunking, similarity tuning, prompt design, and human-in-the-loop validation, plus strong stakeholder communication via demos and visual explanations.”

PythonTypeScriptAPI DevelopmentData ModelingWorkflow AutomationMachine Learning+129
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EV

Eric Vuu

Screened

Mid-Level Full-Stack Software Engineer specializing in cloud infrastructure and web applications

Huntington Beach, CA5y exp
AuthoriumCal State Long Beach

“Software engineer turned solutions/technical support engineer with 5+ years of experience supporting and migrating a custom CRM used by U.S. House of Representatives offices. Has hands-on ownership of database export/import scripting, API key-based integrations, and production troubleshooting, and also consults government customers on procurement/CLM workflows while partnering with sales/marketing on demos and adoption use cases.”

ReactSASSjQueryNode.jsGraphQLPython+72
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AB

Akshay Bharadwaj Kunigal Harish

Screened

Mid-level Machine Learning Engineer specializing in NLP, computer vision, and LLM systems

Boston, MA5y exp
Perceptive TechnologiesNortheastern University

“Built a production multi-agent cybersecurity defense simulator orchestrated with CrewAI, combining Red/Blue team LLM agents, a RAG runbook retriever, and an RL remediation agent trained via state-space simplification and reward shaping for rapid incident response. Also partnered with quant analysts and fund managers to deliver an automated trading and portfolio management system using statistical methods plus CNN/LSTM models, reporting up to 15% weekly ROI.”

PythonSQLShell ScriptingMongoDBPostgreSQLRedis+101
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MT

Melanie Tong

Screened

Mid-Level Full-Stack Engineer specializing in FinTech payments

Calgary, AB3y exp
HelcimLighthouse Labs

“Frontend engineer who delivers quickly on high-stakes, client-driven projects—led a payment request frontend rewrite shipped in 1–2 weeks and implemented a pre-authorization management feature on a one-week deadline. Experienced in Vue + TypeScript (with React exposure) and in improving existing codebases by standardizing state management (Pinia), while also owning dev-led QA, deployments/rollbacks, and close collaboration with product/design via Figma.”

GoTypeScriptJavaScriptPHPSQLHTML+58
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VP

Varshitha Pendyala

Screened

Mid-level Generative AI Engineer specializing in LLMs, RAG, and agentic systems

Houston, TX5y exp
Asuitech SolutionsUniversity of Houston

“Built a production "Mini RAG Assistant" for internal document Q&A, focusing on grounded answers (anti-hallucination), retrieval quality, and latency/cost optimization. Uses LangChain/LangGraph for orchestration and applies a metrics-driven evaluation loop (including reranking and semantic chunking improvements) while collaborating closely with product stakeholders.”

AgileAmazon ECSAmazon RedshiftAmazon S3Apache HadoopApache Kafka+164
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MW

Muhammad Waqas Ashraf

Screened

Senior Full-Stack Engineer specializing in AI, cloud infrastructure, and DevOps

Lahore, Pakistan7y exp
Devline SolutionsNational University of Sciences and Technology

“Frontend engineer focused on building and scaling data-heavy, real-time dashboards with React/Next.js/TypeScript. Emphasizes performance and reliability at scale through modular architecture, centralized state (Zustand/Redux), strict API contracts, automated testing, and production monitoring (Grafana/CloudWatch), and has experience shipping quickly with feature-flagged rollouts and rapid iteration from user feedback.”

AngularAPI GatewayAWSAWS LambdaCI/CDCypress+104
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JG

Jaydeep Gondaliya

Screened

Mid-Level Full-Stack Software Engineer specializing in Healthcare IT and FinTech

USA7y exp
UnitedHealth GroupCalifornia State University, Los Angeles

“Engineer with experience in regulated healthcare and financial systems, including a United Health healthcare service migration to AWS. Built documentation-as-code for CI/CD (Jenkins/Docker/Kubernetes/Terraform + GitHub Actions) that accelerated release cycles from 3 weeks to 4 days and tied security configuration (Spring Security/OAuth2/JWT) directly to HIPAA/GDPR compliance. Strong in observability-led incident response (ELK/Prometheus/Grafana) and performance tuning (PostgreSQL, async processing), citing MTTR reduction from 3 hours to 50 minutes and support for 250K+ concurrent users.”

JavaSpring BootSpring MVCHibernateSpring SecurityJWT+143
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RD

Raghavendra Dubey

Screened

Mid-level Software Engineer specializing in Java microservices and cloud-native systems

CA, USA5y exp
DXC TechnologyCalifornia State University, Long Beach

“Enterprise workflow/product engineer (DXC) who owned a customer-facing workflow application for 500+ users and improved performance ~30% through API/SQL optimization, caching, and CI/CD-backed iteration. Experienced designing React/TypeScript + Java/Spring Boot systems and operating microservices with RabbitMQ/Kafka-style messaging, emphasizing reliability via DLQs, backpressure, and strong observability. Also built an internal automation dashboard adopted by support/ops teams to cut manual work and reduce SLA misses.”

AgileAnsibleApache KafkaApache TomcatAWSAWS CloudFormation+103
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NB

Navyanth Bollareddy

Screened

Junior Full-Stack Software Engineer specializing in React/Node, cloud, and LLM-powered automation

Remote2y exp
Toyz ElectronicsUniversity of Georgia

“Master’s program project lead who built and deployed a real-time sound recognition system (Flask + React Native + ML) that was adopted by 200+ university students. Demonstrates strong production engineering and cross-layer debugging—solving latency, unreliable uploads, and observability gaps using microservice separation, chunked/idempotent transfers, and packet-capture-driven network diagnosis—plus AWS/on-prem and IoT edge-to-cloud integration experience.”

TypeScriptPythonJavaReactNext.jsReact Native+72
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VM

Vaishnavi M

Screened

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

5y exp
Liberty MutualUniversity of Maryland, Baltimore County

“At Liberty Mutual, built a production underwriting decision assistant combining LLM reasoning with quantitative models and strong auditability. Implemented a claims-based response verification pipeline that cut hallucinations from 18% to 3% and materially improved user trust/validation scores. Experienced orchestrating ML/LLM workflows end-to-end with Airflow, Kubeflow Pipelines, and Jenkins, including SLA-focused pipeline hardening.”

A/B TestingApache AirflowApache KafkaApache SparkAWSAWS Lambda+143
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RB

Rakshith Baskar

Screened

Junior Robotics Engineer specializing in ROS2 perception and multi-sensor calibration

Mesa, AZ1y exp
Arizona State UniversityArizona State University

“Entry-level robotics software engineer/team lead with hands-on experience spanning multi-robot UAV simulation (Gazebo + PX4 SITL) and autonomous vehicle stack integration (ROS2 Humble + Autoware Universe). Has tackled real-time perception optimization (OpenCV + custom deep learning) and built robust cross-protocol communication interfaces to connect ROS2 systems with embedded ESP32 devices.”

BashCC++Computer VisionData Structures & AlgorithmsDeep Learning+128
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KM

KrishnaVardhan Mandanapu

Screened

Mid-Level Software Development Engineer specializing in GenAI automation and cloud systems

Long Beach, CA6y exp
simplehumanGeorge Mason University

“Backend Python engineer who architected an event-driven order integration engine connecting EDI vendors to ERP/WMS/3PL systems, including a canonical order model and adapter framework to eliminate per-customer hardcoding. Has hands-on Kubernetes production experience (microservices, Celery workers, CronJobs, HPAs) and implemented GitOps/CI-CD using GitHub Actions, Docker, and ArgoCD, including moving deployments from on-prem to Azure.”

PythonJavaScriptJavaSQLFlaskVue.js+100
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RR

Ravinder Reddy Mamidi

Screened

Mid-Level Full-Stack Engineer specializing in Java Spring Boot and React

Remote, US3y exp
SynchronyGovernors State University

“Full-stack engineer who built a cloud-native customer servicing platform at Synchrony using React 18/Next.js (SSR) and Spring Boot microservices on AWS. Experienced with high-volume, event-driven systems (Lambda/SNS/SQS) and strong distributed-systems rigor around data integrity (idempotency, DynamoDB conditional writes) plus production-grade security/observability (JWT/OAuth2, WAF, Actuator, Splunk).”

JavaCC++PythonJavaScriptTypeScript+100
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SG

Saharsha Goud

Screened

Senior Full-Stack Java Developer specializing in microservices and cloud platforms

Denver, CO7y exp
DaVitaUniversity of Central Missouri

“Full-stack engineer focused on data-heavy platforms, building Spring Boot microservices and Angular/React dashboards end-to-end. Has hands-on experience improving large-scale API and UI performance (including cutting 8–10s response times) and ensuring cross-service consistency using Kafka, idempotent consumers, and strong validation/transaction patterns on AWS with CI/CD and observability (Prometheus/ELK).”

AgileAJAXAmazon API GatewayAmazon DynamoDBAmazon EC2Amazon ECS+215
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AS

Aswath Senthilkumar

Screened

Junior Full-Stack & ML Engineer specializing in AI-driven web platforms and healthcare analytics

Remote, USA2y exp
Vian AnalyticsArizona State University

“Backend-focused engineer who owned an AI mentoring workflow platform built in Django with LangGraph multi-agent orchestration, optimizing it to stay under 200ms latency while scaling past 1,200 active users using profiling, caching, load testing, and OpenTelemetry-style tracing. Also has hands-on experience containerizing and deploying Python/ML services to AWS ECS via GitHub Actions/GitOps, and building reliable real-time pipelines with webhooks and Redis queues (idempotency, backpressure, DLQ).”

PythonJavaJavaScriptTypeScriptCC+++99
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AG

Ashritha G

Screened

Mid-Level Software Development Engineer specializing in distributed systems and cloud microservices

USA3y exp
Outlier AIUniversity of Massachusetts Boston

“Software engineer with enterprise, customer-facing delivery experience across Outlier AI and Wipro—builds and productionizes workflow and integration solutions with a strong focus on real-world performance and reliability. Delivered a Firestore/Redis-backed real-time pipeline that cut page load times by 20% and held consistent performance across 10,000+ sessions, and has hands-on production incident experience stabilizing high-traffic microservices via caching, indexing, and safe canary deployments.”

JavaPythonC++JavaScriptSQLC+115
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HP

Harsh Patel

Screened

Senior Data Scientist specializing in LLM applications, RAG systems, and production ML

New York, NY6y exp
Fulcrum AnalyticsUniversity of Maryland, Robert H. Smith School of Business

“Senior Data Scientist in consulting who has built production RAG systems for insurance/annuity document search at large scale (100K+ PDF pages), emphasizing grounded answers, guardrails, and low-latency retrieval. Experienced in end-to-end MLOps for LLM apps—monitoring, evaluation sets, drift handling, and safe rollouts—and in orchestrating complex pipelines with Prefect/Airflow and deploying services on Kubernetes.”

PythonNumPyPandasScikit-learnTensorFlowPyTorch+105
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DP

Dhrumi patel

Screened

Mid-level Software Engineer specializing in Java/Spring Boot microservices

Boston, MA3y exp
IPSER LAB LLCNortheastern University

“Full-stack AI engineer who built Skillmatch AI, an LLM/RAG-based job matching platform using FastAPI microservices, Airflow-orchestrated async pipelines, and Pinecone vector search (sub-second retrieval across 50k+ vectors) deployed on GCP with autoscaling. Also partnered directly with a cancer researcher to automate SEER + PubMed-driven report generation via an AI pipeline, emphasizing rapid prototyping and outcome-focused communication.”

AgileAWSAWS GlueAWS LambdaBashCI/CD+77
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AD

Aditi Deshpande

Screened

Mid-level Software/AI Engineer specializing in GenAI, AWS, and microservices

Remote, United States4y exp
LegalPro+Arizona State University

“Built a production AI pipeline at EyCrowd to automatically grade shaky outdoor user-submitted brand videos using CV + CLIP/BLIP and a LangChain RAG layer per brand, with GPT-4 generating structured JSON explanations and grades. Optimized for latency and cost (batch PyTorch inference, caching), cutting review time from ~8 minutes to <2 minutes while reaching ~90% alignment with human graders and supporting thousands of videos/day.”

AgileApache HadoopAWSAWS LambdaBitbucketCI/CD+90
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