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Vetted Generative AI Professionals

Pre-screened and vetted.

Generative AIPythonDockerSQLAWSCI/CD
HK

Hari Krishna Kona

Screened

Mid-level AI/ML Engineer specializing in Generative AI and LLM-powered NLP

Boston, MA3y exp
G-PLindsey Wilson College

“LLM/AI engineer who built a production automated document-understanding pipeline on Azure using a grounded RAG layer, designed to reduce manual review time for unstructured financial documents. Demonstrates strong real-world scaling and reliability practices (Service Bus queueing, Kubernetes autoscaling, observability, retries/circuit breakers) plus rigorous evaluation (shadow testing, replaying traffic, multilingual edge-case suites) and stakeholder-friendly, evidence-based explainability.”

Machine LearningDeep LearningGenerative AILarge Language Models (LLMs)Computer VisionSemantic Search+111
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AB

Akshara Bhukya

Screened

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

Remote4y exp
KGS Technology GroupStevens Institute of Technology

“LLM/RAG engineer who has built and shipped production assistants, including a RAG-based teaching assistant (Marvel AI) using LangChain/LlamaIndex/ChromaDB with OpenAI embeddings and Redis vector search, achieving ~30% accuracy gains and ~35% latency reduction. Also deployed FastAPI services on Google Cloud Run with observability and prompt-level monitoring, and partnered with non-technical ops stakeholders to deliver an internal policy-document RAG assistant.”

PythonRC++SQLScikit-learnPandas+112
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JB

Jeffery Bray

Screened

Executive Board Director & Healthcare/AI Strategy Leader

Salt Lake City, UT22y exp
Needs Beyond MedicineUniversity of Utah

“Operator-advisor with deep healthcare/pharmacy leadership: CEO of MedQuest Pharmacy for over a decade and cofounder/CEO of Vibrix Pharmacy and Vibrix Technologies. Known for architecting scalable operating models (decision rights, role scorecards, workflow mapping, communication cadences) and aligning cross-functional teams—including product/engineering/compliance—while mentoring founders through practical, low-bureaucracy systems.”

Risk ManagementGenerative AIData GovernanceSaaSCorporate GovernanceBoard Governance+58
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PM

Parjita Munshi

Screened

Mid-level Data Scientist & Product Ops/Analytics professional specializing in AI and KPI systems

Remote5y exp
FundairaNortheastern University

“Cross-functional operator/chief-of-staff style leader who took a product from prototype to a live pilot in 3 months, spanning public-sector data normalization, an ML matching engine, a secure API, and KPI/investor demo instrumentation. Strong focus on executive alignment and productivity via Notion-based operating systems plus automated reporting (Python/Power BI), with experience supporting fundraising and go-to-market narratives.”

Strategic PlanningGo-to-Market StrategyStakeholder ManagementVendor ManagementCross-Functional LeadershipRequirements Gathering+95
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TG

Tarun Gowda

Screened

Mid-level AI Engineer specializing in Generative AI and multimodal RAG systems

Morristown, NJ3y exp
LumanityUniversity of Massachusetts

“GenAI/LLM engineer who built and productionized a 0-1 application (EMULaiTOR at Lumanity) combining qualitative + quantitative data using Postgres/pgvector RAG and prompt engineering, deployed with Azure backend and AWS-hosted frontend. Demonstrates strong production instincts (latency reduction via region alignment, autoscaling/health checks) and hands-on agent/tool-call debugging, plus experience enabling sales and winning a large pharma client.”

PythonJavaScriptJavaSQLHTMLCSS+91
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CV

Christopher Velasco Chua

Screened

Director-level Client Account Management leader specializing in retail digital promotions

San Francisco, CA8y exp
InmarSan José State University

“MarTech-focused enterprise CSM/strategic account leader with 7 years advising enterprise retailers, specializing in discovery-to-conversion workflows and API-driven integrations. Demonstrated ability to turn transactional vendor relationships into strategic partnerships using Tableau/Looker insights, cross-functional execution with Product/Engineering, and measurable outcomes (25% revenue lift, 15% YoY growth, 35% faster deployments) that support renewals and expansion.”

Account ManagementCross-Functional CollaborationGenerative AIGoogle WorkspaceJiraMicrosoft Office+47
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JG

Jayasri Guthula

Screened

Mid-level Applied ML Engineer specializing in LLM evaluation and multimodal agent systems

Remote5y exp
Handshake AIUniversity of Arkansas at Little Rock

“Full-stack engineer working at the intersection of product and infrastructure, building developer-facing interfaces for AI voice agents in XR/immersive environments plus telemetry-heavy analytics dashboards. Experienced in Postgres telemetry data modeling and performance tuning, and in designing durable multi-step LLM pipelines with idempotency, retries, and strong observability; has operated in fast-moving startup-like teams (Biocom, HandshakeAI).”

Prompt EngineeringGenerative AIPyTorchTensorFlowscikit-learnModel Evaluation+91
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YS

Yash Sandansing

Screened

Mid-Level Software Engineer specializing in backend, cloud, and scalable APIs

Remote, United States4y exp
FILMIC TECHNOLOGIESUniversity at Buffalo

“Backend Python engineer who has built an LLM agentic tutoring/assignment helper with a custom pipeline for parsing visually complex textbooks (integrating AlibabaResearch VGT and implementing missing preprocessing from the paper), improving RAG grounding with ~90% cleaner extracted text. Also led major platform scaling work by refactoring monolithic image processing into Celery-based async microservices on AWS (GPU/CUDA + S3), and implemented Kafka streaming for payment webhooks with strict ordering, idempotency, and multi-zone fault tolerance.”

PythonJavaC++TypeScriptNode.jsDjango+101
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AP

Ashay Panchal

Screened

Mid-level Software Engineer specializing in AI-driven distributed systems

San Jose, CA4y exp
Be Still AnalyticsNortheastern University

“Backend engineer who built a high-stakes, privacy-first platform at be Still Analytics for survivors of domestic violence, emphasizing anonymity, security, and reliability. Experienced with GenAI backends (LangChain + AWS Bedrock) including RAG to prevent hallucinations, plus cloud-native scaling (Docker/Kubernetes) and cost-saving migrations from legacy VMs to serverless (30% reduction).”

AWSAWS LambdaCI/CDC++Computer VisionContainerization+84
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YA

Yash Amre

Screened

Intern Data Scientist specializing in LLMs, NLP, and MLOps

California, USA1y exp
LexTrack AIUniversity of Colorado Boulder

“Built and deployed a production LLM-powered internal AI assistant using a RAG pipeline to help teams search internal PDFs/knowledge bases and generate grounded summaries/answers. Demonstrates strong end-to-end ownership (ingestion through APIs) plus production rigor (monitoring/logging/CI-CD, evaluation metrics) and practical optimizations for hallucination, latency, and answer quality (thresholding, fallbacks, caching, async, re-ranking, two-tier model routing).”

PythonRSQLSwiftCHTML+107
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NR

Nagendra Reddy Palugulla

Screened

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

Florida, United States4y exp
Community Dreams FoundationUniversity of Houston

“Built and shipped a production real-time content moderation platform for Zoom/WebEx-style meetings, combining Whisper speech-to-text with fast NLP classifiers and REST APIs to flag hate speech, bias, and HIPAA-related content under strict latency constraints. Demonstrates strong MLOps/infra depth (Airflow, Kubernetes, Terraform/Helm, observability) and a pragmatic approach to reducing false positives via threshold tuning, context validation, and hard-negative data—while partnering closely with compliance and product stakeholders.”

PythonPyTorchTensorFlowApache SparkScikit-learnHTML+119
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PT

Phani Tarun Munukuntla

Screened

Junior Machine Learning Engineer specializing in LLMs, NLP, and MLOps

New York, USA2y exp
University at BuffaloUniversity at Buffalo

“Developed and productionized VL-Mate, a vision-language, LLM-powered assistant aimed at helping visually impaired users understand their surroundings and query internal knowledge. Emphasizes reliability and safety via confidence thresholds, uncertainty-aware fallbacks, hallucination grounding checks, and rigorous offline + user-in-the-loop evaluation, with experience orchestrating multi-step LLM pipelines (LangChain-style and custom Python async) and deploying on containerized infrastructure.”

PythonPySparkApache AirflowJavaJavaScriptSQL+121
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RJ

Richa Jindal

Screened

Senior Product Manager specializing in SaaS CRM, MarTech, and GenAI products

India8y exp
HighLevelIndian School of Business

“Product/LiveOps leader who applies free-to-play mechanics to live consumer products; led monetization and engagement for Pavo (video-based Gen Z dating app on iOS/Android), addressing weak D7 retention and low free-to-paid conversion. Implemented progression, nudges, soft paywalls, experimentation, and real-time moderation, driving 3.2x DAU and ~60% lift in early engagement while improving conversion without harming retention.”

Product ManagementGo-to-Market StrategyStakeholder ManagementCross-Functional LeadershipCRMObservability+89
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GA

Gopichand Amaraneni

Screened

Mid-level AI/ML Engineer specializing in healthcare ML, MLOps, and LLM/RAG systems

USA4y exp
CitiusTechNorthwest Missouri State University

“Healthcare-focused ML/LLM engineer who built a production hybrid RAG workflow to automate prior authorization by retrieving from medical guidelines/historical cases (FAISS) and generating grounded rationales for clinicians. Strong in operationalizing ML with Airflow/Kubeflow/MLflow on SageMaker, optimizing latency (ONNX/quantization/async), and reducing hallucinations via evidence-only prompting; also partnered closely with clinical ops to deploy a readmission prediction tool used in daily rounds.”

PythonNumPyPandasJSONSQLPostgreSQL+151
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PA

Priyansh Aggarwal

Screened

Junior Software Engineer specializing in AI/ML and full-stack web development

Panchkula, India2y exp
CloudNationThe NorthCap University

“Built core perception and decision layers for a 3D AI-powered interactive avatar/agent with a robotics-like perception–reasoning–action loop, combining computer vision, NLP, and real-time response. Focused on making multimodal inputs robust (normalization, intent + emotion signal fusion) and improving real-time performance via instrumentation, profiling, and parallelization; also designed distributed, loosely coupled state-based communication and deployed services with Docker.”

PythonJavaC++MySQLGitHubGit+71
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MS

Mohammed Syed

Screened

Mid-level AI Engineer & Researcher specializing in healthcare AI and multimodal LLM systems

Remote2y exp
University of ArizonaUniversity of Arizona

“Backend/ML engineer focused on clinical AI transparency who built ShifaMind, an explainability-enforced clinical ML system using UMLS/MIMIC-IV/PubMed data with RAG, GraphSAGE, and cross-attention. Demonstrated strong production engineering via FastAPI API design and safe migrations (feature flags/shadow inference), plus HIPAA-aligned auth/RLS patterns; also delivered a real-time comet detection system reaching 97.7% accuracy.”

Anomaly detectionAWSBlenderCC++Collaboration+168
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MC

Meghana Chowdary Borra

Screened

Junior Machine Learning Engineer specializing in predictive modeling and GenAI RAG systems

Buffalo, New York2y exp
AFAD AgencyUniversity at Buffalo

“LLM engineer who built and deployed an emotionally intelligent AAC communication system using an emotion-aware RAG pipeline (Empathetic Dialogues + GoEmotions) and a PEFT-adapted model. Experienced with LangChain/LangGraph and custom Python orchestration, focusing on reliability (guards, schema validation, fallbacks), latency optimization, and rigorous evaluation (automatic metrics + human-in-the-loop), with a reported 18% user satisfaction improvement.”

A/B TestingCI/CDDeep LearningFeature EngineeringGitHub ActionsLSTM+122
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SM

Supriya Miriyala

Screened

Junior Software Engineer specializing in cloud administration and Python/ML

Springfield, IL2y exp
LTIMindtreeUniversity of Illinois Springfield

“Backend/data engineer with hands-on production experience across Azure and AWS: built FastAPI + PostgreSQL services with Azure AD OAuth2/JWT auth and strong reliability patterns (timeouts, retries, correlation IDs). Delivered AWS Lambda/ECS solutions with Terraform/CI-CD and cost controls (SQS buffering, reserved concurrency), and built/operated AWS Glue ETL pipelines into Redshift while modernizing legacy SAS reporting into Python microservices with parity testing.”

A/B TestingAgileAlgorithmsAngularArtificial IntelligenceBootstrap+124
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PS

Puja Sridhar

Screened

Intern AI/ML Engineer specializing in LLMs, RAG, and agentic automation

Remote0y exp
Pennant EducationRutgers University

“Built and deployed production NLP/LLM systems including a multilingual (5-language) health misinformation detection pipeline with latency optimization (batching/quantization/caching) and explainability (gradient-based attention visualizations). Experienced orchestrating end-to-end AI workflows with Airflow and Prefect, and partnering with customer support ops to deliver an AI agent for ticket summarization and priority classification with clear, measurable acceptance criteria.”

PythonSQLGenerative AILarge Language Models (LLMs)LangChainRetrieval-Augmented Generation (RAG)+102
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TM

Tanay Mehendale

Screened

Junior Data Engineer specializing in LLM agents and RAG pipelines

San Jose, CA3y exp
Texas A&M UniversityTexas A&M University

“Built and deployed “ApartmentFinder AI,” a multi-agent system using Google ADK, Gemini, and Google Maps MCP to automate apartment shortlisting and commute-time analysis, cutting a 45–70 minute user workflow down to ~30 seconds. Also has strong delivery/process chops from serving as an SDLC Release Coordinator, managing 52+ releases and reducing SDLC issues by 84%.”

AgileAmazon EC2Amazon RDSAmazon RedshiftAmazon S3Anomaly Detection+86
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KK

Krishna K

Screened

Junior Machine Learning Engineer specializing in multimodal systems and LLMs

Jersey City, NJ2y exp
JerseySTEMUniversity at Buffalo

“Built and productionized a domain-specific LLM-powered RAG knowledge assistant at JerseyStem for answering questions over large internal document corpora, owning the full stack from FAISS retrieval and LoRA/QLoRA fine-tuning to AWS autoscaling GPU deployment. Drove measurable gains (28% accuracy lift, 25% latency reduction) and improved reliability through hybrid retrieval, grounded decoding, preference-model reranking, and Airflow-orchestrated pipelines (35% faster runtime), while partnering closely with non-technical stakeholders to define success metrics and ensure adoption.”

A/B TestingAmazon BedrockAmazon EKSAmazon RedshiftApache HiveApache Spark+147
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OC

Oliver Ching

Screened

Senior Multidisciplinary Product & UX Designer specializing in physical-digital consumer products

13y exp
3dified Studio

“Marketing creative/designer who combines creative direction, illustration, and web design with scalable Figma design systems for high-volume output. Uses a hybrid traditional + GenAI workflow for lightweight marketing videos (3D rendering in Adobe Substance, AI animation via Pika, final typography/motion in After Effects) and builds modular template frameworks to generate many on-brand variations quickly in collaboration with UA/growth and product teams.”

Responsive DesignGraphic DesignMotion GraphicsCross-Functional CollaborationWeb DevelopmentFigma+93
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AS

ARMAN SIDDUQUI

Screened

Entry-Level AI Engineer specializing in AI agents and RAG systems

Aptech

“Built and showcased a self-made "Scholar AI" education web app that answers student queries and uses a RAG pipeline to ingest PDFs and generate MCQs for exam prep. Also delivered an AI solution for generating ad creatives and ad copy from keywords, emphasizing clear communication with non-technical stakeholders.”

AutomationContent StrategyDigital MarketingEmail MarketingMachine LearningMeta Ads+29
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AB

ARYAN BHAPKAR

Entry Robotics & AI Engineer specializing in autonomous manipulation and vision-based robotics

Tempe, AZ1y exp
Interactive Robotics LaboratoryArizona State University
Artificial IntelligenceMachine LearningDeep LearningGenerative AIReinforcement LearningRobotics+56
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