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Vetted ChromaDB Professionals

Pre-screened and vetted.

ChromaDBPythonDockerLangChainSQLAWS
NB

Neha Basugade

Junior Machine Learning Engineer specializing in computer vision and LLM applications

Ann Arbor, MI1y exp
University of MichiganUniversity of Michigan
.NETAWSAnomaly DetectionCI/CDCUDAChromaDB+82
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JV

Jagadesh Varma Nadimpalli

Mid-level AI/ML Engineer specializing in GenAI, RAG, and multi-agent systems

CA, USA4y exp
C3 AIPace University
API DevelopmentAuthenticationAuthorizationAWS LambdaAzure Machine LearningCaching+74
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YG

Yugandhar Gopu

Mid-level Machine Learning Engineer specializing in multimodal AI and anomaly detection

Pennsylvania, PA2y exp
Penn StatePenn State University
LangChainFastAPILLM fine-tuningLoRALlamaIndexChromaDB+77
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HV

Harini Valson

Mid-level AI/ML Engineer specializing in GenAI, NLP, and MLOps

Dallas, TX6y exp
EquinixFitchburg State University
PythonSQLPySparkBashJavaJavaScript+152
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TD

Taranjot Dang

Junior AI/Machine Learning Engineer specializing in healthcare applications

Boston, Massachusetts1y exp
HyperAnalyticsNortheastern University
PythonSQLJavaJavaScriptC++R+69
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CM

Cherian Mathew

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

Boston, MA1y exp
BluShues, IncUniversity of Maryland, College Park
PythonJavaCC++C#JavaScript+59
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LG

Lohitasrith Gondi

Mid-level Data Scientist specializing in GenAI, NLP, and recommendation systems

NY, NY4y exp
Capital OneUniversity of Massachusetts Amherst
A/B TestingAgileAmazon API GatewayAnomaly DetectionAngularJSAWS+143
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SS

Sai Sekhar Dharmireddy

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

Dallas, TX5y exp
Goldman SachsSouthern Arkansas University
Machine LearningDeep LearningGenerative AIComputer VisionMLOpsLarge Language Models (LLMs)+141
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BG

Bradley Germain

Staff-level AI/ML Engineer specializing in enterprise RAG, agentic automation, and AI governance

Remote, Palo Alto, CA12y exp
GleanUniversity of North Florida
PythonGoJavaScriptTypeScriptSQLBash+254
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SK

Sharath Kumar

Mid-level AI/ML Engineer specializing in GenAI, computer vision, and real-time ML pipelines

Remote, USA5y exp
Northern TrustWilmington University
PythonSQLRScikit-learnTensorFlowKeras+115
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MM

Mahita Maddipati

Junior Front-End/Full-Stack Software Engineer specializing in accessible web applications

Falls Church, VA2y exp
Virginia TechVirginia Tech
Responsive DesignAJAXReactReact HooksNext.jsAngular+68
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JK

Jaya Krishna

Mid-level AI/ML Engineer specializing in conversational AI, NLP, and LLM-powered RAG systems

Jersey City, NJ5y exp
JPMorgan ChaseSaint Peter's University
PythonTypeScriptJavaScriptSQLPyTorchTensorFlow+108
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JB

Jayeetra Bhattacharjee

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in LLMs, NLP, and analytics automation

Bristol, UK4y exp
TCSUniversity of Bristol

“AI/ML Engineer (TCS) who built and deployed a production LLM-powered audit transaction validation service to reduce manual review of unstructured transaction records and comments. Implemented a LangChain/Python pipeline for extraction/normalization and discrepancy detection, with strong production reliability practices (decision logging, dashboards, labeled eval sets) and a human-in-the-loop auditor feedback loop to improve precision/recall under strict data-sensitivity and near-real-time constraints.”

AWSAnomaly DetectionAuthenticationAutomationBusiness IntelligenceCI/CD+121
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JL

Joseph Lin

Screened ReferencesModerate rec.

Intern Software Engineer specializing in full-stack development and applied AI

New York, NY0y exp
Real Value CapitalNYU

“Internship experience building an end-to-end medical AI pipeline that extracts and normalizes messy medical PDFs, fine-tunes BioBERT to classify tumor-related statements (including negation/ambiguity handling), and integrates image-model outputs (MedSAM/GroundingDINO) for tumor localization and classification. Also worked on an LLM/RAG system to draft IPO prospectuses using retrieved regulatory/financial sources (including SEC EDGAR) with structured prompts to reduce hallucinations.”

AlgorithmsAmazon EC2AWSAuthenticationAuthorizationChromaDB+123
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MP

Manasa Pantra

Screened ReferencesStrong rec.

Junior Software Engineer specializing in AI, LLM systems, and full-stack development

Stony Brook, NY2y exp
Stony Brook UniversityStony Brook University

“Product-focused full-stack engineer at startup (Zippy) who shipped a production multi-agent AI system for restaurant operations plus payments workflows. Built end-to-end: RAG grounded on a Notion knowledge base, structured function-calling task routing, FastAPI/JWT multi-tenant backend, and a polished React+TypeScript owner dashboard. Has real production incident experience (duplicate Stripe webhooks) and reports ~94% task-routing accuracy under load.”

PythonCC++JavaScriptTypeScriptGit+161
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AM

Aakash Mahesha

Screened

Junior AI/ML Engineer specializing in anomaly detection and LLM/RAG systems

Fort Mill, SC2y exp
HoneywellNortheastern University

“Built and productionized a tool-first, multi-agent framework that augments an anomaly detection model with domain context to generate trustworthy, evidence-backed anomaly explanations (including false-positive likelihood). Architected the platform to be model/orchestration/vectorDB agnostic (e.g., GPT + CrewAI + ChromaDB vs Claude + LangGraph + other vector DB) with strong performance, reliability, and OpenTelemetry-based observability. Also built a personal LangGraph-based "mock interviewer" agent that asynchronously fuses voice + live code input using state reducers, stop conditions, and fallback routing.”

PythonC#.NETSQLJavaJavaScript+101
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SA

Sathwik Alavala

Screened

Mid-level Data Scientist specializing in AI/ML, MLOps, and LLM-powered analytics

Charlotte, NC6y exp
Bank of AmericaCampbellsville University

“Built and deployed a production LLM-powered document Q&A system enabling natural-language querying of large PDFs, focusing on retrieval quality (overlapped chunking) and low-latency performance (optimized embeddings + vector search). Experienced with scaling ML/LLM workflows using async/batch processing, caching, cloud storage, and orchestration via Apache Airflow with robust testing, monitoring, and failure handling.”

A/B TestingAnomaly DetectionAPI DevelopmentAWSAzure Machine LearningChromaDB+94
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SH

Sri Harsha patallapalli

Screened

Mid-level Machine Learning & Data Infrastructure Engineer specializing in MLOps on AWS

Boston, MA5y exp
Dextr.aiNortheastern University

“Built and deployed a fine-tuned Qwen 2.5 14B model into production at Dextr.ai as the backbone for hotel-operations agentic workflows, running on AWS EKS with Triton and TensorRT-LLM. Demonstrates strong cost-aware LLM engineering (QLoRA, FP8/BF16 on H100) plus rigorous benchmarking/observability (Prometheus, LangSmith) with reported sub-30ms TTNT. Previously handled long-running ETL orchestration with Airflow at GE Healthcare and Lowe's.”

PythonJavaC++SQLJavaScriptBash+113
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SF

Sahachel Flores

Screened

Mid-Level Backend Software Engineer specializing in enterprise systems and applied AI/ML

Mountain View, CA6y exp
IBMUniversity of Arizona

“Support engineer with IBM DFSMS OAM experience who restored a production TS7770 environment during a TS7760→TS7700 migration by using logs, SLIP traps, and dump analysis to pinpoint an SMS configuration (SCDS) issue, then partnering with the customer to redo the migration successfully. Also built a personal agentic news selector system and emphasizes documentation improvements and customer education to prevent recurring incidents.”

PythonCC++SQLJavaScriptReact+74
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RG

Rohan Gore

Screened

Intern AI/ML Engineer specializing in agentic systems and full-stack development

New York City, NY0y exp
MARV CapitalNYU

“Built and scaled a multi-agent LLM automation pipeline during a fintech internship, growing from a rapid 1-week proof-of-concept to a 15+ agent hierarchical system that cut market brief report generation time from ~5 hours to under 30 minutes. Hands-on with agent frameworks (Haystack, CrewAI, LangChain) and experienced in debugging agent communication issues via sandboxed modular testing and context/token management; also regularly gives architecture-first technical demos at multiple hackathons and university events.”

Apache CassandraApache HadoopApache KafkaAWSAWS LambdaC#+93
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MD

Monisha DhanaVijeya

Screened

Junior Software Engineer specializing in AI, backend systems, and AWS cloud

Sunnyvale, CA2y exp
LinkedInNortheastern University

“Built and shipped a production multi-agent conversational AI platform (Monitor agent + RAG + 4 additional agents) with enterprise REST APIs, using ChromaDB-grounded WCAG knowledge to keep responses accurate while varying tone via personality modes and conversation memory. Has experience at LinkedIn delivering technical demos and pre-sales guidance to both engineering teams and C-level stakeholders, acting as a translator between sales and technical teams to drive adoption.”

PythonJavaCTypeScriptJavaScriptSQL+151
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