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Vetted OpenAI API Professionals

Pre-screened and vetted.

OpenAI APIPythonDockerCI/CDAWSSQL
YR

Yash Rangucha

Mid-level Backend Software Engineer specializing in Python microservices and cloud-native APIs

IL, United States4y exp
ServiceNowIllinois Institute of Technology
PythonFastAPIDjangoFlaskMicroservices ArchitectureAuthorization+58
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NM

Nathan Magnon

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

Texas City, TX11y exp
HealtheeUniversity of York
A/B TestingAmazon EKSApache HadoopApache KafkaApache SparkAWS+99
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YT

YOSHITHA T

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

5y exp
Wells FargoTexas Tech University
A/B TestingAPI GatewayArgo CDAWSAWS CloudFormationAWS IAM+92
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AA

Alla Alla harshavardhan

Mid-Level Generative AI Engineer specializing in LLM apps, RAG, and cloud deployment

5y exp
State FarmCleveland State University
A/B TestingAmazon API GatewayAmazon DynamoDBAmazon EKSAmazon RDSAmazon S3+120
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SM

Sanjita Magar

Senior Full-Stack Engineer specializing in cloud-native microservices and AI solutions

Burlington, NC8y exp
LabcorpUniversity of Bridgeport
JavaGoPythonCC++Multithreading+149
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BR

Bhargav Reddy Duddugunta

Mid-level Software Engineer specializing in LLM systems and RAG

USA3y exp
Capital OneGeorge Mason University
PythonGoJavaScriptSQLHTMLCSS+86
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AJ

Avdhut Joshi

Mid-Level Software Engineer specializing in cloud microservices and GenAI RAG systems

Fremont, CA7y exp
FreelanceSavitribai Phule Pune University
Amazon ECSAmazon RDSAmazon S3Apache KafkaAPI DevelopmentCI/CD+49
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KM

Krishang Mittal

Junior Full-Stack & ML Engineer specializing in AI products and real-time systems

Madison, WI1y exp
PonyxUniversity of Wisconsin–Madison
AgileAPI IntegrationAWSC#C++Data Structures+78
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SS

Sri Sai Durga Katreddi

Mid-level AI Engineer specializing in production LLM, RAG, and agentic AI systems

6y exp
Bank of America
A/B TestingAnomaly DetectionAnsibleArgo CDAudit LoggingAWS+217
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KR

Krithika Reddy

Senior AI Python Engineer specializing in Generative AI and MLOps

San Francisco, CA8y exp
Silicon Valley Bank
A/B TestingAmazon BedrockAmazon EC2Amazon RDSAmazon S3Amazon SageMaker+158
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CC

Chandan Chalumuri

Screened

Mid-level Data Scientist specializing in ML, NLP, and Generative AI

Tempe, AZ4y exp
MetLifeArizona State University

“Data engineering / ML practitioner with experience at MetLife building transformer-based sentiment analysis over large unstructured datasets and productionizing pipelines with Airflow/PySpark/Hadoop (reported 52% efficiency gain). Also implemented embedding-based semantic search using Pinecone/Weaviate to improve retrieval relevance and enable RAG for customer support and document matching use cases.”

A/B TestingAgileApache AirflowApache HadoopApache KafkaApache Spark+170
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BG

Bhavana G

Screened

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

Mckinney, Texas4y exp
Capital OneSouthern Arkansas University

“Built and deployed a production LLM-based RAG agent platform adopted by multiple business teams (Marketing, GTM, Recruiting, Customer Support) to automate knowledge search, Q&A, and content generation. Emphasizes production-grade reliability (grounding/validation/guardrails), rigorous evaluation/monitoring, and cost-aware scaling via model tiering, prompt/retrieval optimization, and caching using LangChain/LangGraph orchestration.”

PythonTypeScriptJavaScriptSQLOpenAI APILangChain+55
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RK

RAJ KUMAR

Screened

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

Chicago, IL6y exp
DiscoverDePaul University

“Backend engineer at Discover who built and scaled Python/Flask services for a card dispute resolution platform, tackling long-running external network validations with Celery+Redis and delivering measurable gains (response time ~3s to <300ms; throughput +40%). Experienced in high-scale PostgreSQL/SQLAlchemy optimization (partitioning, read replicas, N+1 avoidance), event-driven systems with Kafka, and integrating ML fraud detection using AWS SageMaker/Lambda/ECS with clear separation of real-time vs batch processing.”

JavaPythonTypeScriptSQLBashSpring Boot+141
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VV

Vamsidhar Vuddagiri

Screened

Mid-level AI/ML Engineer specializing in LLM fine-tuning, RAG, and MLOps

OH, USA4y exp
Impacter AIUniversity of Dayton

“Built an LLM-powered academic research assistant for a professor (LangChain + OpenAI + arXiv) focused on synthesizing papers quickly, with emphasis on reliability (ReAct prompting, citation verification) and cost control (caching). Has production MLOps/orchestration experience at Cisco and HCL Tech using Kubernetes, plus MLflow and GitHub Actions for lifecycle management and CI/CD.”

Machine LearningSupervised LearningUnsupervised LearningFeature EngineeringModel EvaluationGenerative AI+89
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LL

Lenny Lin

Screened

Junior Full-Stack Software Engineer specializing in web apps, cloud infrastructure, and ML

Champaign, IL2y exp
University of IllinoisUniversity of Illinois Urbana-Champaign

“Built and owned a hackathon project (Gritto) with a Python/FastAPI backend that routes user text through a sequence of Gemini agents to produce structured JSON outputs. Has hands-on production deployment experience using Docker/Docker Compose, GitHub Actions CI/CD, AWS App Runner, MongoDB, and secrets management (Doppler + migration to AWS Secrets Manager), plus implemented a chat-like experience via multiple HTTP requests when SSE wasn’t viable.”

A/B TestingAPI IntegrationAWSAWS LambdaBERTCI/CD+103
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AR

Anvesh Reddy Narra

Screened

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

3y exp
State FarmCleveland State University

“Built a secure, on-prem/private GPT assistant to replace manual SharePoint-style search across thousands of policies/SOPs/engineering docs, using a production RAG stack (LangChain/LangGraph, FAISS/Chroma, PyMuPDF+OCR, vLLM). Implemented layout-aware ingestion (including table-to-JSON) and a multi-agent retrieval/generation/verification workflow with strong observability and compliance guardrails, delivering ~70% reduction in search time.”

Anomaly DetectionAnsibleApache KafkaApache SparkAWSBERT+184
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MS

Madhu Sriram Sengottu Velan

Screened

Entry-Level Software Engineer specializing in backend systems and distributed services

Chennai, IN2y exp
Oracle Financial Services SoftwareShiv Nadar University

“Backend/AI engineer from an early-stage Japan-based startup (WorkAI) who built a multi-tenant RAG system integrating Notion/Slack/Google Drive with Pinecone and OpenAI, including a chatbot retrieval workflow. Experienced in production reliability (rate limits, retries, verification layers), strong Python/FastAPI engineering practices, and PostgreSQL performance optimization; currently based in India and needs sponsorship.”

GoJavaPythonCJavaScriptSQL+83
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MK

Manpreet Kour

Screened

Senior Data Scientist specializing in Generative AI and NLP

Seattle, USA6y exp
SOTIDr. B. R. Ambedkar National Institute of Technology, Jalandhar

“ML/NLP engineer with recent Scotiabank experience building production-grade indexing automation over large-scale emails and customer databases, combining LLM fine-tuning (Mistral, XLM-R) with fuzzy matching to exceed 95% accuracy under strict banking constraints. Also built a RAG-based chat agent using Gecko embeddings, Vertex AI Search, Gemini, and cross-encoder reranking, and delivered a text-to-SQL chatbot at SOTI through iterative fine-tuning and benchmark-driven experimentation.”

Machine LearningDeep LearningGenerative AIComputer VisionPyTorchPySpark+92
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AH

Anirudh Herady

Screened

Junior Software Engineer specializing in backend systems and LLM/RAG applications

Remote, USA1y exp
Potters TechArizona State University

“Full-stack engineer who built a cloud storage app feature (file upload/management) with Next.js App Router + TypeScript and owned post-launch improvements. Also has internship experience building a geospatial AI chatbot: designed Postgres/PostGIS data models and optimized spatial queries, and implemented an LLM workflow orchestrated with LangChain/LangGraph plus a RAG pipeline grounded in OpenStreetMap data to reduce hallucinations.”

Amazon EC2Amazon S3Amazon SQSAPI DesignAuto-scalingCI/CD+89
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AE

Anudeep Eloori

Screened

Mid-Level Full-Stack Software Developer specializing in Java microservices and modern web apps

USA3y exp
EpsilonUniversity of South Florida

“Software engineer with experience building and iterating high-volume Spring Boot microservices on AWS (Docker/Kubernetes) and integrating with React front-ends. Also delivered an LLM-powered document summarization system using embeddings + retrieval (RAG) with grounding/guardrails and built evaluation loops that directly drove retrieval and chunking improvements. Has scaled Kafka-based pipelines processing millions of messy financial/infrastructure records with reliability and cost/latency tradeoff management.”

JavaJavaScriptTypeScriptPythonSQLSpring Boot+100
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BK

brian kachnowski

Screened

Executive CTO / Software R&D Leader specializing in mobile, GPU computing, and quantitative finance

Florida, USA39y exp
Flash SocialUniversity of Michigan

“Serial entrepreneur since leaving corporate in 2009, working largely for equity on multiple startups. Building (1) academically rigorous, anti-overfitting quant/backtesting tools for retail investors (with potential applicability to smaller hedge funds lacking quant staff) and (2) a partner-led “social-as-a-service” platform for verticals like real estate/PropTech (including FSBO use cases) focused on first-party data capture vs. big tech.”

LeadershipRecruitingFull-stack developmentLinuxWindowsAWS+159
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SN

Sri Niyati Kompella

Screened

Senior Data Engineer specializing in cloud data platforms and ML pipelines

Atlanta, GA8y exp
Berkshire HathawayUniversity of Alabama at Birmingham

“Data engineer focused on AWS-based enterprise data platforms, owning end-to-end pipelines from multi-source batch/stream ingestion (Glue/Kinesis/StreamSets/Airflow) through PySpark transformations into curated datasets for Redshift/Snowflake. Emphasizes production reliability with strong monitoring/observability and data quality gates, and reports ~30% performance improvement plus improved SLAs and latency after optimization.”

Amazon DynamoDBAmazon EMRAmazon EKSAmazon KinesisAmazon RedshiftAmazon S3+138
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