Vetted Anomaly Detection Professionals

Pre-screened and vetted.

KA

Intern Data Scientist specializing in NLP and Large Language Models

Noida, India1y exp
InnovaccerIIT Madras
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HM

Mid-level AI/ML Engineer specializing in LLM and production ML systems

6y exp
eBayLamar University
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KN

Mid-level AI Data Scientist specializing in financial risk, fraud detection, and NLP/LLM systems

USA4y exp
Bank of AmericaUniversity of Maryland, College Park
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HB

Junior AI Product Engineer specializing in LLM workflows and analytics automation

Pittsburgh, PA3y exp
Peak3Carnegie Mellon University
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SG

Intern Software Engineer specializing in distributed systems and FinTech

Natick, MA2y exp
Goldman SachsUC Riverside
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SG

Mid-level AI Engineer specializing in LLM orchestration and production AI systems

Monroe, NJ5y exp
Shri Sai Tech LLCUniversity of Kansas
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SS

Mid-level Backend Software Engineer specializing in FinTech and cloud microservices

Bellevue, WA4y exp
UberAuburn University at Montgomery
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VN

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

5y exp
Goldman SachsUniversity of Connecticut
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YO

Senior AI Platform Engineer specializing in agentic AI and RAG systems

Alpharetta, GA7y exp
Morgan StanleyKakatiya Institute of Technology and Science
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AA

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

Manhattan, NY10y exp
AssemblyAI
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AM

Abhishikth Meesala

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in NLP, Generative AI, and fraud detection

Dallas, TX4y exp
PwCCampbellsville University

At PwC, built and productionized an agentic RAG enterprise search assistant over 6M internal documents (8M embeddings), deployed across AWS and GCP. Drove major retrieval gains (72%→92% precision via BM25+dense hybrid with RRF and cross-encoder re-ranking), reduced hallucinations 30%, achieved <2s latency at 50–60K queries/month, and cut support tickets 30%—boosting adoption to 2,500 users by adding source-cited answers.

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JYOTHI N - Senior Data Scientist specializing in analytics, experimentation, and BI on AWS in Austin, TX

JYOTHI N

Screened ReferencesStrong rec.

Senior Data Scientist specializing in analytics, experimentation, and BI on AWS

Austin, TX7y exp
AmazonJawaharlal Nehru Technological University

Data/ML practitioner focused on healthcare data quality and record linkage: analyzed 10M+ records, built anomaly detection and NLP-driven entity resolution, and automated AWS ETL/validation pipelines (Glue/Redshift/Lambda), cutting data errors by 40% and generating $500k in annual savings. Has hands-on experience with embeddings (Sentence Transformers/spaCy), FAISS vector search, and fine-tuning for domain-specific matching.

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YS

Yoga Sathyanarayanan

Screened ReferencesStrong rec.

Junior Software Engineer specializing in backend, distributed systems, and AI infrastructure

New York, NY3y exp
NYU Stern School of BusinessNYU

Full-stack engineer with hands-on experience spanning real-time AI products, large-scale payments migration, internal research infrastructure, and open-source ML tooling. Particularly compelling is the mix of low-latency React/Node/TypeScript systems work, zero-downtime migration of 50,000 accounts across 12 regions, and proactive contributions to Kubeflow build and security reliability.

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MM

Principal Applied Scientist specializing in ML systems and Generative AI

Tampa, FL11y exp
OracleUniversity of South Florida

Built and owned an end-to-end agentic RAG chatbot platform for Baptist Health that helped clinicians access policy and clinical documents faster, reducing manual lookup by 80% and delivering about $2M in annual savings. Brings strong healthcare GenAI production experience, including HIPAA-aligned governance, PHI redaction, observability, evaluation, and scalable Python/Kubernetes deployment practices.

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VV

vishal varma

Screened

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

6y exp
CVS HealthUniversity of Bridgeport

Built and deployed a production RAG-based LLM Q&A and summarization platform for internal documents, emphasizing grounded answers with structured prompting and citations to reduce hallucinations. Experienced orchestrating end-to-end LLM workflows with LangChain plus cloud pipelines (Azure ML Pipelines, AWS), and runs iterative evaluation using both metrics (accuracy/hallucination/latency/cost) and real user feedback to drive reliability.

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HH

Mid-level Applied AI Engineer specializing in ML systems, MLOps, and industrial analytics

Toronto, Canada5y exp
FreelanceUniversity of Waterloo

Industrial AI/ML practitioner with experience deploying real-time monitoring and anomaly detection in a regulated Sanofi vaccine manufacturing facility, including root-cause workflows, logging/alerting, and SOP-aligned validation—achieving ~90% faster anomaly detection. Also built Python/NLP-style automation to accelerate instrumentation & control documentation (~40% faster) and delivered end-to-end predictive analytics for an agri-food operations/distribution client using close operator and leadership feedback loops.

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IB

Isean Bhanot

Screened

Junior Robotics Engineer specializing in autonomy, perception, and motion planning

Los Angeles, CA3y exp
Laboratory for Embedded Machines and Ubiquitous Robots (LEMUR)UCLA

Robotics software engineer who built the full control stack for a fleet of manufacturing/repair robots in Relativity Space R&D (perception, planning, motion control, integration, deployment). Has ROS/ROS 2 experience spanning custom SLAM (LiDAR+IMU), multi-robot coordination, and multi-drone control (Pixhawk 4, minimum-snap trajectories), with strong real-world debugging and simulation/CI testing practices (Gazebo, CI/CD, some Docker).

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Priyanshu Maurya - Mid-level Data Scientist specializing in insurance, finance, and healthcare analytics in New York, NY

Mid-level Data Scientist specializing in insurance, finance, and healthcare analytics

New York, NY3y exp
MetLifeRowan University

Built and productionized LLM-driven sentiment scoring for earnings call transcripts at Goldman Sachs, replacing legacy NLP to deliver a cleaner trading signal while managing latency/cost via batching, caching, and distilled models. Also implemented an Airflow-orchestrated fraud modeling pipeline at MetLife with drift-based retraining and SageMaker deployment, and has a disciplined evaluation/rollout framework for reliable AI workflows.

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Aigo Madakimova - Senior Data Analyst specializing in audit analytics, automation, and financial data platforms in Malvern, PA

Senior Data Analyst specializing in audit analytics, automation, and financial data platforms

Malvern, PA6y exp
VanguardNYU

Full-stack engineer with strong Next.js App Router + TypeScript experience who built and owned a production internal analytics dashboard end-to-end, including server-component data fetching, route handlers for secure proxying, and post-launch monitoring/caching fixes. Also designed Postgres data models and performance-tuned analytics queries, and built reliable BullMQ/Redis-based order-fulfillment workflows with idempotency, retries, and compensating refunds—comfortable operating with high ownership in early-stage teams.

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YV

Yash Vishe

Screened

Junior Software Engineer specializing in LLM systems, data engineering, and ML

San Diego, CA2y exp
San Diego Supercomputer CenterUC San Diego

Backend/ML systems engineer with experience at SDSC, UCSD, and Media.net, building production semantic dataset/model discovery using embeddings + Solr KNN and LLM-based intent/reranking at 5M+ dataset scale. Emphasizes offline/online separation for predictable serving, has delivered measurable gains (23% retrieval accuracy, 38% latency reduction) and helped secure a $3M+ NSF grant.

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Jones Pavan - Director-level Engineering Leader specializing in platform modernization and AI integration in Burbank, CA

Jones Pavan

Screened

Director-level Engineering Leader specializing in platform modernization and AI integration

Burbank, CA15y exp
BlackLineCalifornia State University, Northridge

Engineering leader from Blackline who has repeatedly rescued and delivered high-visibility products by resetting roadmaps, tightening execution (better specs/estimation), and accelerating team velocity. Scaled a distributed org from ~20 to ~40 engineers by building a new India team with strong hiring rubrics and governance-as-code/SDLC consistency. Also modernized legacy systems into microservices (Kafka/Kubernetes/Apigee) and drove hackathon-to-production innovation using Google Vertex AI.

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