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Vetted AWS Lambda Professionals

Pre-screened and vetted.

AWS LambdaPythonDockerCI/CDAmazon S3AWS
BM

BhavikGuptesh Mehta

Junior Software Engineer specializing in backend systems, QA automation, and AI/ML

Seattle, USA2y exp
Virtual Math Labs, Govt Of IndiaSeattle University
AgileAlgorithmsAngularArtificial IntelligenceCC#+94
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NT

Narendar Teegala

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

United States7y exp
Hyundai AutoEverUniversity of North Texas
JavaSpring BootSpring MVCMicroservicesReact HooksAngular+62
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MB

Misha Barabanov

Screened

Senior XR/VR Developer specializing in Unity multiplayer MR and technical art

14y exp
Resolution GamesNational Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute"

“Unity/Meta Quest programmer with 2 years of experience shipping two award-winning VR games (Spatial Ops and Twenty Guys) now live on the Meta Store with 4.8+ ratings. Contributed major gameplay/tech systems including co-location, an in-game map editor, and active ragdoll/physics interactions, and has also built Unity apps largely solo spanning rendering, shaders, serialization, VFX, and async/state management.”

AWS LambdaBitbucketBlenderC#DebuggingFigma+179
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CN

Chathrapathi Nikhil Kandagatla

Screened

Mid-level Full-Stack Software Engineer specializing in React/Node and cloud-native web apps

Los Angeles, CA3y exp
ReplyQuickCal State Fullerton

“Full-stack engineer who built and iterated a CRM dashboard at ReplyQuick by sitting with end users, prioritizing blockers, and shipping frequent updates—improving usability and performance enough to replace a spreadsheet workflow within ~2 months. Demonstrates strong security fundamentals (OAuth2/JWT + RBAC) and practical microservices experience (decoupling a CRM API from a PDF-processing service via async processing and status tracking).”

JavaScriptTypeScriptPythonJavaHTMLCSS+75
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SG

Sravani Gangaraju

Screened

Mid-level AI/ML Engineer specializing in NLP, computer vision, and recommender systems

Michigan, United States4y exp
Piper SandlerLawrence Technological University

“Built and deployed a production NLP sentiment analysis system at Piper Sandler to turn noisy, finance-specific customer feedback into scalable insights. Demonstrates strong end-to-end MLOps: fine-tuning BERT, improving label quality, monitoring for language drift, and automating retraining/deployment with Airflow and Docker (plus Kubeflow exposure).”

A/B TestingApache HadoopApache HiveApache KafkaApache SparkAWS+113
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RY

Ravali Yerrapothu

Screened

Senior Machine Learning Engineer specializing in LLMs, RAG, and Computer Vision

Tampa, FL9y exp
Aavishkar.aiUniversity of South Florida

“Built a production LLM-powered clinical note summarization and retrieval system that structures patient/provider/payer discussions into standardized outputs (symptoms, treatments, clinical codes, and prior-auth decisions) and stores notes as embeddings for hybrid search and proactive prior-authorization prediction. Experienced with LangChain/LangGraph orchestration, RAG, and grounding against medical code databases, and has communicated model feasibility/limitations to business stakeholders (Virtusa/Comcast).”

PythonJavaC++CRShell scripting+168
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VC

VamshiKrishna Challa

Screened

Mid-level Data Scientist specializing in industrial IoT, predictive analytics, and generative AI

Ruston, LA5y exp
Grambling State UniversityLouisiana Tech University

“ML/NLP engineer with Industrial IoT experience who built an end-to-end anomaly detection and GenAI explanation system: AWS (S3, PySpark, EC2/Lambda) pipelines feeding dashboards, plus transformer-embedding vector search to connect anomalies to noisy maintenance notes and past events. Demonstrated measurable impact (15% lift in defect detection; ~35% reduction in manual review; 35% fewer preprocessing errors) and strong productionization practices (orchestration, monitoring, rollback, data-quality controls).”

Amazon CloudWatchAmazon EC2Amazon S3Amazon SageMakerAngularJSAnomaly Detection+110
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VK

Vijay Kumar

Screened

Mid-level Cloud/DevOps Engineer specializing in AWS automation and CI/CD

Chicago, IL4y exp
Enterprise MindsGovernors State University

“AWS Cloud DevOps Engineer focused on production Linux environments, building secure CI/CD pipelines (Jenkins/GitHub) to deploy Dockerized services to AWS ECS and automating infrastructure with Terraform/CloudFormation. Strong in operational troubleshooting and scaling (CloudWatch-driven performance remediation, Auto Scaling/ELB, multi-AZ HA patterns), but explicitly does not have IBM Power/AIX or PowerHA/HACMP experience.”

Amazon CloudFrontAmazon DynamoDBAmazon EC2Amazon ECSAmazon EMRAmazon RDS+108
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DS

Damon Summers

Screened

Senior Backend Software Engineer specializing in AWS cloud-native data platforms

Columbus, OH10y exp
Highcode TechUniversity of Maryland, College Park

“AWS-focused Python backend/data engineer who builds production analytics APIs and ETL pipelines using API Gateway, Lambda, Step Functions, ECS, Glue, S3, and RDS. Strong in operational reliability and performance tuning (including SQL indexing/partitioning) and has modernized legacy SAS statistical processing into validated Python services with phased rollouts and stakeholder sign-off.”

PythonREST APIsAPI DevelopmentBackend DevelopmentAWSAWS Lambda+72
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AA

Alexis Abbott

Screened

Senior Python Developer specializing in AWS, microservices, and data pipelines

Boston, MA6y exp
SumatoSoftPenn State University

“Backend/data engineer with strong AWS production experience spanning serverless APIs and containerized workers (Lambda, API Gateway, ECS) plus data pipelines (Glue, S3, Athena/Redshift). Has modernized legacy SAS/cron batch systems into Python/AWS with parallel-run parity validation and low-risk cutovers, and has owned ETL incidents end-to-end (CloudWatch detection, backfills, and preventative controls). Targeting $130k–$150k base and strongly prefers remote, with occasional Bethesda onsite acceptable.”

AgileAJAXAmazon API GatewayAmazon CloudWatchAmazon DynamoDBAmazon EC2+187
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CS

Chandini Sattineni

Screened

Mid-level Software Engineer specializing in full-stack web, Go microservices, and AI integrations

Remote, USA5y exp
Infinite Computer SolutionsSacred Heart University

“Backend/LLM engineer who ships production internal tooling end-to-end: automated data-request processing with monitoring-driven improvements (better error diagnostics and lower latency via query/index tuning). Also built a RAG-based internal Q&A system over company docs and operational logs with guardrails (similarity thresholds, fallbacks, response limits) and an eval loop using real user queries and human review to drive prompt/retrieval changes.”

TypeScriptReactGoPythonJavaJavaScript+109
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MP

Mahesh Ponnam

Screened

Mid-level Data Scientist specializing in credit risk, fraud detection, and ESG analytics

PA, USA4y exp
Northern TrustWilmington University

“AI/LLM practitioner who has deployed production chatbots across e-commerce, HRMS, and real estate, focusing on retrieval-first workflows for factual tasks like product and property search. Optimized intent understanding and significantly improved latency by using lightweight embeddings and tuning the inference pipeline on Groq (Llama 3.3), while applying modular orchestration and measurable production evaluation.”

PythonPandasNumPyScikit-learnTensorFlowPyTorch+124
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GK

Gowtham Kota

Screened

Mid-Level Full-Stack Software Engineer specializing in React, Java/Spring Boot, and AWS

Illinois, USA4y exp
ARV SystemsKakatiya Institute of Technology and Science

“Full-stack product engineer who has shipped customer-facing features end-to-end, including a product detail page backed by Java/Spring Boot microservices and a React/TypeScript UI. Demonstrated measurable impact through performance and maintainability improvements (30% faster APIs, 25% less duplicated UI code, 40% reduced API complexity via GraphQL) and has operated/scaled apps on AWS with CI/CD, monitoring, and incident-driven scaling fixes.”

AgileAmazon CloudWatchAmazon DynamoDBAngularJSAPI DevelopmentAWS+93
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AK

Ankit Kumar Nath

Screened

Mid-Level Full-Stack Developer specializing in web, mobile, and AI-powered applications

3y exp
LERIUniversity of Maryland, Baltimore County

“Full-stack engineer who built a live-streaming edtech platform at KratosIQ, owning the entire frontend and the backend streaming layer. Notably migrated the system from a P2P mesh to an SFU architecture to handle scaling under heavy load, and delivered measurable React performance gains (450ms to 40ms render time) validated via Lighthouse and web vitals.”

JavaScriptTypeScriptReactNext.jsReduxNode.js+99
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MA

Michael Asadoorian

Screened

Executive CTO specializing in cloud-native SaaS, multi-cloud infrastructure, and AI/ML

Los Angeles, CA28y exp
Amove.ioUniversity of La Verne

“Hands-on infrastructure and engineering leader (Director of Global Infrastructure / CTO) who has run double-digit multi-million dollar data center expansion and cloud migration programs and scaled teams rapidly (including offshore/nearshore). Strong AWS and microservices background (Lambda/SQS/SES), with experience balancing deep technical architecture work alongside investor/VC communications and fundraising-related responsibilities.”

AgileAWSChange ManagementCI/CDCloud-Native ArchitectureCompliance+100
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VD

Vincent Dory

Screened

Senior Python Full-Stack Engineer specializing in AWS media processing platforms

Remote8y exp
Warner Bros. DiscoveryBradley University

“Lead developer on a Warner Brothers Discovery media management platform, building Python/Flask APIs and AWS-based workflows. Delivered a serverless search overhaul (Lambda + API Gateway + OpenSearch Serverless) while maintaining parity with legacy Rekognition tag-based search, and implemented event-driven ETL (SNS/SQS) to ingest/validate CSV metadata into PostgreSQL with strong logging and incident response practices.”

PythonJavaScriptNode.jsTypeScriptC++Flask+72
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SK

Sai Krishna mekala

Screened

Mid-level Full-Stack Software Engineer specializing in cloud microservices and AI search

5y exp
SBA CommunicationsWichita State University

“Robotics software engineer focused on backend/integration for indoor autonomous mobile robots, with hands-on ROS 2 experience integrating Nav2/AMCL/TF2 and LiDAR/camera pipelines. Emphasizes production readiness—robust failure recovery, QoS-tuned distributed communication, and strong observability (logging/health checks)—validated through Gazebo simulation, sensor-data replay debugging, and Docker-based CI/CD deployment.”

JavaPythonTypeScriptJavaScriptNode.jsSQL+162
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AJ

Atharva Joshi

Screened

Mid-level GenAI Engineer specializing in RAG systems and AI agents

San Francisco, CA5y exp
AltimetrikUniversity of Minnesota

“LLM/agentic systems builder who has deployed production solutions for a resource management firm, using an MCP-driven architecture with Neo4j + Elasticsearch and a ChatGPT frontend to generate candidate/company “SmartPacks” and answer entity Q&A. Also built a LangGraph/LangSmith-orchestrated multi-agent workflow that automates data-infra change requests end-to-end (impact analysis, SQL + tests, and PR creation), and delivered a ~60% latency reduction through TTL-based context caching while improving accuracy via a business data dictionary.”

AWSAWS LambdaBERTBigQueryChromaDBCI/CD+92
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BB

bharath burgoju

Screened

Mid-Level Data Engineer specializing in cloud data pipelines and big data platforms

Newark, NJ3y exp
Horizon Blue Cross Blue Shield of NJUniversity of Memphis

“Data engineer with ~4 years of experience building Python-based data ingestion/processing services and real-time streaming pipelines (Kafka/PubSub + Spark Structured Streaming). Has deployed containerized data applications on Kubernetes with GitLab CI/Jenkins pipelines and applied GitOps to cut deployment time ~40% while reducing config drift. Also supported a legacy on-prem data warehouse/backend migration to GCP using phased migration and parallel validation to meet strict reliability/SLA needs.”

AgileAmazon CloudFrontAmazon DynamoDBAmazon EC2Amazon EMRAmazon Kinesis+114
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AP

Atharva Pandkar

Screened

Junior AI/ML Engineer specializing in LLM agents and RAG systems

Austin, TX2y exp
Attri AINortheastern University

“Built and deployed a production, multi-tenant modular agentic AI platform at Easybee AI, using LangChain/LangGraph with Redis-backed durable state to make agents reusable, traceable, and auditable. Emphasizes reliability via strict tool schemas, deterministic controllers, tenant-level policy enforcement, and regression testing derived from real production failures; also delivered AI automation for legal/finance workflows (attorney draw and expense automation) with explainable, deterministic payouts.”

PythonRJavaCC++JavaScript+112
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HD

Hemant Deshmukh

Screened

Mid-level Data Engineer specializing in cloud data pipelines and analytics engineering

Boston, MA5y exp
AltaPotentiaNortheastern University

“Built and deployed a production LLM-powered demand and churn forecasting system for an e-commerce client, combining open-source LLMs (LLaMA/Mistral) and Sentence-BERT embeddings to generate business-friendly explanations of forecast drivers. Strong focus on data quality and model trust (validation, baselines, segmented monitoring) and production reliability via Airflow-orchestrated pipelines with readiness checks, retries, and ongoing drift/A-B testing.”

PythonSQLPySparkApache SparkdbtSnowflake+93
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AS

Ashutosh Srivastava

Screened

Senior Engineering Manager specializing in AI platforms and cloud-native backend systems

Sunnyvale, CA11y exp
DE3PBIO

“Player-coach engineering leader who stayed hands-on (coding/reviews) while leading delivery, including designing an event-driven AI workflow engine with explicit state modeling and robust retries. Built near real-time enterprise analytics for campaign measurement and drove reliability/process improvements (observability, incident runbooks, release management). Introduced lightweight CI/CD and automated testing to cut release time by ~40% while maintaining quality.”

MentoringSprint PlanningCI/CDObservabilityCloud-Native ArchitectureMicroservices Architecture+77
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