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Vetted Python Professionals

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Phani K — Mid-level AI/ML Engineer specializing in NLP, computer vision, and Generative AI in Indiana, USA

Phani K

Screened

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

Indiana, USA4y exp
UnitedHealth GroupIndiana State University

“Built and deployed a production LLM-powered clinical insights/summarization assistant for healthcare teams, including a Spark+Airflow pipeline, fine-tuned transformer models, and a FastAPI Docker service on AWS. Demonstrates strong MLOps/LLMOps depth (Airflow on Kubernetes, custom AWS operators/IAM, MLflow, CloudWatch) and practical reliability work like hallucination mitigation, confidence scoring, and retrieval-backed evaluation with shadow deployments.”

A/B TestingAgileApache AirflowApache KafkaApache SparkAWS+116
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Jax Diagana — Senior AI Engineer specializing in forward-deployed voice agents and incident-response automation in San Francisco, CA

Jax Diagana

Screened

Senior AI Engineer specializing in forward-deployed voice agents and incident-response automation

San Francisco, CA7y exp
AnaplanUniversity of St. Thomas

“FDE at Bland.ai and founder of Fi (incident-response agent) who routinely takes LLM/agentic concepts from prototype to production. Has hands-on experience reverse-engineering undocumented systems to deliver integrations, building LLM testbeds for voice-agent reliability, and rapidly shipping RAG/semantic search solutions (e.g., Confluence runbooks) after deep customer discovery with DevOps/SRE teams.”

A/B TestingAutomationConfluencedbtGitHubIncident Response+66
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Ankita A Khartmol — Junior Backend Software Engineer specializing in conversational AI and cloud APIs in Bangalore, India

Ankita A Khartmol

Screened

Junior Backend Software Engineer specializing in conversational AI and cloud APIs

Bangalore, India1y exp
HarmanUSC

“Backend/ML-focused software engineer who built and evolved a Python/FastAPI backend for a large-scale conversational AI platform, decoupling API and inference services to improve stability and deployment velocity. Experienced in production hardening (timeouts/fallbacks/monitoring), secure multi-tenant systems (JWT/RBAC/RLS), and low-risk migrations using shadow deployments and incremental traffic ramp-ups.”

PythonJavaJavaScriptSQLREST APIsWebSockets+83
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Utkarsh Chandel — Senior Security Engineer specializing in detection engineering, cloud security, and DFIR in San Francisco, CA

Utkarsh Chandel

Screened

Senior Security Engineer specializing in detection engineering, cloud security, and DFIR

San Francisco, CA8y exp
Arctic WolfUniversity of the Cumberlands

“LLM workflow/agentic systems practitioner who has helped customers harden an LLM-based incident triage prototype into a trusted daily-use production system by adding observability, audits, confidence gating, and deterministic fallbacks. Brings an SRE-style approach to real-time debugging (trace replay, rollback/canary, safe toggles) and is experienced running developer-centric demos/workshops and partnering with sales on technical qualification and security/architecture artifacts.”

Incident ResponseRisk ManagementAWSAmazon EC2Amazon S3AWS Lambda+284
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Soham Patil — Junior Cloud & AI/ML Engineer specializing in AWS GovCloud and MLOps in Washington, DC

Soham Patil

Screened

Junior Cloud & AI/ML Engineer specializing in AWS GovCloud and MLOps

Washington, DC2y exp
IBMTexas Tech University

“Robotics software engineer with hands-on ROS 2 autonomy experience on an obstacle-avoiding quadrotor (ROS 2 + Gazebo + PX4 + Nav2/SLAM), including custom work to extend Nav2 into a 3D aerial domain and output PX4 trajectory setpoints. Also built cost-saving ML infrastructure (PostgreSQL + AWS data-cleaning pipeline) and improved object detection accuracy by 40% using CUDA/PyTorch, with strong containerization and CI/CD practices (Docker + Kubernetes, aggressive version pinning) to prevent environment drift.”

AgileAngularAWSAWS CloudFormationAWS IAMAWS Lambda+130
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Chandra Shekar Akkandra — Mid-level AI/ML Engineer specializing in fraud detection and risk analytics in Financial Services in Newark, CA

Chandra Shekar Akkandra

Screened

Mid-level AI/ML Engineer specializing in fraud detection and risk analytics in Financial Services

Newark, CA5y exp
JPMorgan ChaseUniversity of Missouri-Kansas City

“Finance-domain ML/LLM engineer who has shipped production systems including a RAG-based financial insights assistant with a custom post-generation validation layer that verifies atomic claims against retrieved source text to prevent hallucinations in compliance-critical workflows. Also built large-scale MLOps automation on AWS using Kubeflow + MLflow + CI/CD for fraud detection and credit risk models processing 500M+ transactions/day with a 99.99% uptime goal, and partnered closely with JP Morgan risk/compliance stakeholders on NLP-driven compliance monitoring.”

A/B TestingAmazon DynamoDBAmazon EC2Amazon ECSAmazon EKSAmazon Kinesis+136
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Prateek Sahay — Senior Robotics Software Engineer specializing in autonomous navigation and robotic manipulation in Tucson, AZ

Prateek Sahay

Screened

Senior Robotics Software Engineer specializing in autonomous navigation and robotic manipulation

Tucson, AZ7y exp
IBMUniversity of Cincinnati

“Robotics software engineer with deep ROS/ROS 2 autonomy experience across warehouse fleets (Knapp delivery robots and quadrupeds), spanning SLAM, EKF-based sensor fusion localization, Nav2, and behavior-tree mission orchestration. Built a simulation-first testing approach using Isaac Sim Replicator with Dockerized, statistically analyzed repeat runs to catch nondeterminism, and personally owned real-world validation. Also developed a custom UR10 singularity-check ROS node based on manipulability.”

C++PythonPyTorchTensorFlowAWSGitHub Actions+107
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Narendra R — Senior Full-Stack Java Developer specializing in microservices and cloud platforms in Dallas, TX

Narendra R

Screened

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

Dallas, TX7y exp
PNCUniversity of South Dakota

“Backend engineer focused on scalable Python/Flask services and high-performance PostgreSQL/SQLAlchemy systems, with demonstrated wins like reducing N+1-driven response times to under 200ms and cutting P95 latency below 1s via background queues and caching. Has production experience operationalizing ML models as Dockerized APIs on AWS (S3/Lambda) with monitoring (CloudWatch/ELK), plus robust multi-tenant isolation using JWT-driven tenant context and row-level security.”

AgileAJAXAmazon CloudWatchAmazon EC2Amazon RDSAmazon S3+209
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Abdul Mohammed — Mid-level Data Analyst specializing in healthcare and financial analytics in USA

Abdul Mohammed

Screened

Mid-level Data Analyst specializing in healthcare and financial analytics

USA3y exp
Cardinal HealthIndiana Tech

“Built and productionized an LLM-powered clinical documentation and insights pipeline at Cardinal Health using LangChain + GPT-4 with RAG to summarize long clinical notes, extract medication/dosage entities, and generate structured SQL-ready outputs for downstream analytics. Emphasizes clinical reliability via labeled benchmarking (precision/recall/F1), shadow deployments, clinician human-in-the-loop review, and ongoing monitoring/orchestration with Airflow, Lambda, S3, Postgres, and Power BI.”

SQLPythonRHTMLJSONMicrosoft Excel+105
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Meghanath kethireddy — Mid-level Full-Stack/Backend Engineer specializing in Java microservices and cloud platforms in Dallas, TX

Meghanath kethireddy

Screened

Mid-level Full-Stack/Backend Engineer specializing in Java microservices and cloud platforms

Dallas, TX5y exp
CopartUniversity of Texas at Dallas

“PayPal ML/AI practitioner who built and productionized a hybrid recommendation engine (BERT/LLM embeddings + collaborative filtering + XGBoost ranking) on AWS with end-to-end MLOps and orchestration. Addressed real-world issues like cold start and embedding latency (ONNX, clustering, caching, PySpark/Delta Lake) and drove a 27% lift in upsell conversion via A/B testing and stakeholder collaboration with marketing.”

JavaC#PythonC++JavaScriptTypeScript+104
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Ashwitha Reddy — Mid-level Full-Stack Software Engineer specializing in Java/Spring microservices and AWS in Ohio, United States

Ashwitha Reddy

Screened

Mid-level Full-Stack Software Engineer specializing in Java/Spring microservices and AWS

Ohio, United States3y exp
Fifth Third BankUniversity of Houston

“Backend/platform engineer who has owned a real-time business analytics dashboard backend (Python/Flask/MongoDB) and built Kafka event-streaming pipelines with idempotent processing and DLQs. Strong DevOps/GitOps experience deploying containerized microservices to AWS EKS with CI/CD (Jenkins/GitHub Actions/CodePipeline) and ArgoCD auto-sync/drift detection, plus hands-on support for phased hybrid cloud/on-prem migrations using feature flags and replication.”

JavaTypeScriptPythonNode.jsReduxRedux Toolkit+124
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Mukul Sai Pendem — Mid-level Full-Stack Engineer specializing in cloud-native microservices and DevOps in United States (Remote)

Mukul Sai Pendem

Screened

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

United States (Remote)4y exp
Saayam for AllNortheastern University

“Backend engineer with strong Python/FastAPI microservices ownership, including an ML-serving service with embeddings, async DB access, and Redis caching to reduce latency under high load. Experienced deploying and operating containerized services on Kubernetes using GitOps (Argo CD/Helm) with automated CI/CD, plus hands-on Kafka streaming pipeline tuning and enterprise migration work (Infosys) using blue-green/active-passive strategies.”

AgileAnsibleAPI GatewayApache CassandraAuthenticationAWS+147
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Kanan Bandaliyev — Junior Software Engineer specializing in AI, computer vision, and medical imaging in Istanbul, Turkey

Kanan Bandaliyev

Screened

Junior Software Engineer specializing in AI, computer vision, and medical imaging

Istanbul, Turkey2y exp
Osteoid Medical TechnologiesKing's College London

“Unity developer with deep GPU compute experience who shipped a web-deployed CAD-style app requiring real-time mesh manipulation, solving performance and browser memory-limit issues via compute shaders and mesh chunking. Built an independent Unity gravity simulation using Schwarzschild approximation and geodesic integration, and has also worked on game-engine threading/job-queue architecture using AI-assisted workflows.”

Artificial IntelligenceMachine LearningComputer VisionDeep LearningAWSUnity+60
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Aniket Janrao — Junior Data Scientist specializing in healthcare ML and clinical NLP/LLMs in Houma, LA

Aniket Janrao

Screened

Junior Data Scientist specializing in healthcare ML and clinical NLP/LLMs

Houma, LA2y exp
Objective Medical Systems LLCUniversity at Buffalo

“Healthcare-focused LLM engineer who has built two production clinical applications: an automated structured clinical report generator from physician-patient conversations and a RAG-based chatbot for retrieving patient history (procedures, allergies, etc.). Demonstrates strong applied RAG expertise (overlapping chunking, entity dependency graphs, temporal filtering, graph RAG) to reduce hallucinations/omissions and partners closely with clinicians to automate hospital workflows.”

BERTC++Data preprocessingData visualizationDeep learningDocker+125
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Yijun Chen — Senior Full-Stack Software Developer specializing in IoT and cloud systems in Toronto, ON

Yijun Chen

Screened

Senior Full-Stack Software Developer specializing in IoT and cloud systems

Toronto, ON4y exp
PulsenicsUniversity of Toronto

“Frontend-focused engineer who built a full movie recommendation system from concept to production, comparing classic collaborative filtering with LLM-based recommendation approaches on AWS. Emphasizes scalable architecture, strict TypeScript data contracts, and high-quality Next.js/React UI patterns (defensive states, scoped state management, performance optimization) with disciplined QA and feature-flagged rollouts.”

AgileApache HadoopApache KafkaApache SparkAzure Data FactoryAzure DevOps+82
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Manasa Reddy Nagendla — Mid-level Full-Stack Java Engineer specializing in microservices, cloud, and event-driven systems in Cincinnati, OH

Manasa Reddy Nagendla

Screened

Mid-level Full-Stack Java Engineer specializing in microservices, cloud, and event-driven systems

Cincinnati, OH6y exp
Procter & GambleUniversity of Cincinnati

“Software engineer at Procter & Gamble focused on warehouse/operations systems, building near-real-time order/inventory visibility using Java/Spring Boot, React, Kafka, PostgreSQL, and Redis with measurable latency and load-time gains. Also shipped internal LLM/RAG knowledge assistants grounded in company runbooks and workflows, implementing guardrails and an evaluation loop that drove concrete retrieval improvements (document chunking) and regression prevention.”

JavaPythonGoNode.jsC#SQL+161
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Ramtin Kazemi — Junior Full-Stack Software Engineer specializing in Django, AWS, and AI/ML in San Diego, California

Ramtin Kazemi

Screened

Junior Full-Stack Software Engineer specializing in Django, AWS, and AI/ML

San Diego, California1y exp
FOMOUniversity of San Diego

“Full-stack engineer who built and owned an AI-powered personal statement editor in Next.js (App Router + TypeScript), including dynamic routing, server-side data fetching, and typed API route handlers. Post-launch, they handled production monitoring/debugging and shipped reliability/performance upgrades (rate limiting, retries, rollback, DB indexing), and report a 40% latency reduction using Suspense/streaming and React concurrency patterns. Also implemented a durable Temporal-orchestrated AI document workflow with robust retry/idempotency strategies.”

Audit LoggingAWSCI/CDClaudeC++Data Structures and Algorithms+111
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Arya Mane — Junior Full-Stack & AI/ML Engineer specializing in LLMs and multimodal document processing in Dallas, Texas

Arya Mane

Screened

Junior Full-Stack & AI/ML Engineer specializing in LLMs and multimodal document processing

Dallas, Texas1y exp
Receptro.AIUniversity of Texas at Dallas

“Built a production RAG-based NBA player scouting assistant that embeds player profiles into FAISS, orchestrates retrieval and LLM recommendations with LangChain, and surfaces results via embedded Tableau dashboards. Demonstrates strong focus on evaluation/monitoring (batch tests, LLM-as-judge, latency/failure/token metrics) and has experience translating non-technical founder goals into DAPT + fine-tuning plans on curated data.”

PythonSQLPyTorchTensorFlowscikit-learnHugging Face+83
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Sana Khan — Mid-level AI/ML Engineer specializing in MLOps, LLMs, and real-time inference in FinTech in Oklahoma, USA

Sana Khan

Screened

Mid-level AI/ML Engineer specializing in MLOps, LLMs, and real-time inference in FinTech

Oklahoma, USA4y exp
Capital OneOklahoma Christian University

“ML/LLM engineer who has deployed a production LLM-powered assistant for intent classification and query routing (order recommendation/support deflection), combining BERT fine-tuning with an embedding-based retrieval layer and optimizing for low-latency inference. Experienced with end-to-end reliability practices—Airflow-orchestrated ETL, data validation/alerting, MLflow experiment tracking, and iterative improvements driven by user feedback and monitoring.”

PythonSQLNumPyPandasBashPySpark+97
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Saikrishna Vallala — Mid-level QA Automation Engineer / SDET specializing in Financial Services and Healthcare in USA

Saikrishna Vallala

Screened

Mid-level QA Automation Engineer / SDET specializing in Financial Services and Healthcare

USA5y exp
Morgan StanleyDePaul University

“Fintech-focused engineer who built an end-to-end KYC verification pipeline for advisor onboarding using Flask microservices, Celery/Redis, and AWS (Lambda/ECS/EC2) with CloudWatch-driven scaling and latency optimizations. Also shipped a production internal knowledge assistant using RAG + embeddings/vector search with guardrails (similarity-based fallback, prompt-injection protections) and an evaluation loop with compliance specialist review that drove measurable retrieval improvements.”

PlaywrightCypressCucumberTDDTestNGPyTest+110
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Kaushik Balakesavalu — Mid-level Full-Stack Java Developer specializing in enterprise SaaS and FinTech in Fairfax, VA

Kaushik Balakesavalu

Screened

Mid-level Full-Stack Java Developer specializing in enterprise SaaS and FinTech

Fairfax, VA5y exp
State StreetGeorge Mason University

“Software engineer with fintech/retirement-fund domain experience who led an internal dashboard consolidating fund transactions, approvals, and reporting into a single workflow tool. Strong in full-stack delivery (React + REST APIs + DB optimization) and in scaling/cleaning messy operational data via modular ETL pipelines (Python/Node), iterating post-launch with performance improvements like caching, pagination, and enhanced filtering.”

JavaJavaScriptTypeScriptSQLSpring BootSpring Cloud+86
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Mukundan Sridharan — Executive Technology Leader (CTO) specializing in IoT sensing, AI/ML, and RF/embedded systems in Rockville, MD

Mukundan Sridharan

Screened

Executive Technology Leader (CTO) specializing in IoT sensing, AI/ML, and RF/embedded systems

Rockville, MD22y exp
Databuoy CorporationOhio State University

“Currently a startup CTO who thrives on building new technology stacks and rapidly turning technical ideas into products. Interested in partnering with a CEO/business team to commercialize embedded/edge concepts such as multi-sensor drone localization (video/audio/RF with SDR), low-cost solar+battery power nodes networked via LoRa, and an Amazon Sidewalk/LoRa connectivity device with cloud management.”

Product managementMachine learningComputer visionOpenCVLSTMHugging Face+231
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Hamza Ahmed — Entry-Level Software Engineer and Full-Stack Developer in Fremont, CA

Hamza Ahmed

Screened

Entry-Level Software Engineer and Full-Stack Developer

Fremont, CA1y exp
Oroysom VillageUC San Diego

“Generalist troubleshooter with experience debugging across C (memory leaks with Valgrind), Python (bug tracing to meet deadlines), and VHDL (hardware-related issues), plus some exposure to production deployments and networking issue resolution. Has supported customers remotely and emphasizes calm, patient communication during incident resolution.”

JavaPythonCC++MATLABBash+39
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Jake Lee — Junior Full-Stack/Systems Engineer specializing in AI, embedded systems, and healthcare apps in Boston, MA

Jake Lee

Screened

Junior Full-Stack/Systems Engineer specializing in AI, embedded systems, and healthcare apps

Boston, MA3y exp
SolstisBoston University

“Led architecture for “Solstice/Solstis,” a safety-aware, hands-free AI medical assistant that guides users through minor emergencies with a structured, state-machine-driven LLM agent integrated with device hardware. Built RAG grounded in Red Cross procedures plus guardrails, fallbacks, and emergency escalation, and improved real-world usability by shifting from open-ended chat to a deterministic step-by-step workflow measured via completion rate, repeat prompts, and latency.”

CC++C#JavaJavaScriptPython+89
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