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Vetted Anomaly Detection Professionals

Pre-screened and vetted.

Anomaly DetectionPythonDockerSQLCI/CDAWS
KS

Krithi Shetty

Principal Product Strategy Leader specializing in GenAI agents for eCommerce and fulfillment

San Francisco, CA12y exp
WalmartUCLA
Product ManagementProgram ManagementProject ManagementGo-to-Market StrategyAnomaly DetectionRequirements Gathering+71
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BK

Bhavana Karra

Mid-level Data Engineer specializing in real-time streaming and ML feature pipelines

Atlanta, GA6y exp
LyftGrand Valley State University
PythonSQLBashShell ScriptingApache SparkPySpark+93
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SK

Sudhher Kumar

Mid-level AI & Machine Learning Engineer specializing in computer vision and MLOps

United States6y exp
NVIDIAUniversity of Massachusetts Lowell
PythonNumPyPandasScikit-learnPyTorchTensorFlow+106
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SK

SRIDHAR KANDI

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

USA6y exp
UberUniversity of Maryland, Baltimore County
A/B TestingAnomaly DetectionApache HadoopApache HiveApache KafkaApache Spark+127
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VS

Varun Singh

Senior Digital Analyst specializing in marketing analytics, personalization, and MarTech

Dallas, TX7y exp
AT&TSouthern Methodist University
A/B TestingAgileAnomaly DetectionBigQueryCampaign ManagementChatGPT+129
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HK

harsha Kondadi

Mid-level Java Backend Engineer specializing in Financial Services

San Francisco, CA5y exp
BlackRockUniversity of Memphis
JavaSpring BootSpring CloudSpring MVCSpring SecurityHibernate+92
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RS

Raju Sagar

Mid-level AI/ML Engineer specializing in NLP, Computer Vision, and Generative AI

Parsippany, NJ5y exp
Johnson & JohnsonUniversity of Central Missouri
A/B TestingAnomaly DetectionApache AirflowApache KafkaAWSAWS Lambda+115
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ME

Madhu Eadara

Principal AI Platform Architect specializing in agentic AI and enterprise LLM infrastructure

Sunnyvale, CA21y exp
CrowdStrikeUniversity of Massachusetts Boston
A/B TestingAPI GatewayAmazon BedrockAnomaly DetectionAWSClustering+154
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SG

Sanskar gupta

Mid-level Full-Stack Developer specializing in AI-driven FinTech platforms

Remote, USA4y exp
KPMGWichita State University
Anomaly detectionAudit loggingAuthorizationAWSAzure DevOpsBERT+93
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VS

Vudityala Srinidh

Mid-level AI Data Engineer specializing in real-time streaming and LLM-powered fraud analytics

California, USA6y exp
PayPalCalifornia State University, East Bay
PythonSQLPostgreSQLBigQueryPySparkApache Spark+102
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RB

Rajan Bhargav Souda

Mid-level Generative AI Engineer specializing in LLMs, NLP, and multimodal systems

St. Louis, MO6y exp
BJC HealthCareNorthwest Missouri State University
PythonSQLBashPyTorchTensorFlowKeras+94
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VD

Vismay Devjee

Screened ReferencesModerate rec.

Mid-level GenAI Engineer specializing in AI agents, RAG, and LLM evaluation

Boston, MA2y exp
Fidelity InvestmentsNortheastern University

“Asset Management Risk professional at Fidelity Investments who built and productionized an agentic RAG platform enabling compliance and analysts to query 10,000+ fund documents with cited answers in seconds. Implemented structure-aware semantic chunking (AWS Textract), hierarchical retrieval, and hybrid search to raise accuracy from 68% to 94%, and built an evaluation framework tracking accuracy/latency/cost/hallucinations—delivering 40+ hours/month saved and zero critical production failures.”

Apache AirflowAWSAWS LambdaCI/CDClaudeCompliance+85
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RS

Rohith Sadanala

Screened

Mid-level Machine Learning Engineer specializing in Generative AI and MLOps

Missouri, USA3y exp
AirbnbUniversity of South Florida

“LLM/agent engineer who has shipped production RAG chatbots in sustainability-focused domains, including a packaging recommendation assistant that standardized messy user inputs and used Pinecone-backed retrieval over product/regulatory data. Experienced orchestrating end-to-end ML workflows with Airflow and AWS Step Functions/Lambda, emphasizing reliability (property-based testing, circuit breakers, OpenTelemetry) and measurable performance (latency/cost). Partnered closely with non-technical leadership to ship 3 weeks early, driving adoption by 150+ businesses and ~20% reported waste reduction.”

A/B TestingAmazon BedrockAmazon EC2Amazon EKSAmazon RDSAmazon S3+154
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DV

Devisri Veeramachaneni

Screened

Senior Software Engineer specializing in cloud backend systems and LLM-powered agents

Seattle, WA5y exp
AmazonSan José State University

“Amazon Fire TV Devices engineer who built and shipped a production LLM-powered lab triage and validation system that grounds recommendations in internal runbooks/known-issue data and pushes evidence-based actions via dashboards and Slack. Emphasizes safety and measurability with structured JSON outputs, replay-based evaluation on historical incidents, and production metrics (e.g., disagreement rate and time-to-first-action), plus cost/latency optimizations like caching, batching, and rule-based fast paths.”

PythonJavaJavaScriptTypeScriptC++Bash+130
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NK

Nandini Kosgi

Screened

Mid-level AI/ML Engineer specializing in LLMs, RAG, and fraud/risk analytics in Financial Services

PA, USA4y exp
Capital OneRobert Morris University

“Built and shipped a production-grade GenAI Fraud & Compliance Investigation Copilot for a large US bank, integrating OCR docs, structured data, and prior case history to generate grounded, regulator-friendly summaries and red-flag highlights. Demonstrates strong end-to-end LLM systems engineering (LangGraph/LangChain, hybrid retrieval with FAISS+BM25, guardrails/citations, streaming/latency optimization) plus rigorous evaluation and close partnership with compliance stakeholders.”

A/B TestingAnomaly DetectionApache HadoopApache HiveApache KafkaApache Spark+137
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KS

Karan Shah

Screened

Mid-level Software & Robotics Engineer specializing in autonomous systems and ROS 2

USA3y exp
Boston DynamicsUniversity of Texas at Arlington

“Robotics software engineer focused on production-grade autonomy in GPS-denied environments, building full navigation stacks (perception, EKF/UKF sensor fusion, planning, control) in ROS2. Integrated YOLOv8/semantic segmentation/RL policies into real-time NAV2 pipelines via a custom perception-aware costmap layer, with emphasis on deterministic control loops, embedded GPU performance, and robust system observability/fault tolerance.”

PythonC++CROS 2LinuxGazebo+174
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BP

Byron Pineda

Screened

Staff/Lead Data Scientist specializing in Generative AI, NLP/LLMs, and MLOps

Pascagoula, MS10y exp
TuringMississippi State University

“Lead Data Scientist (10+ years) with recent work in healthcare data: built production pipelines that unify EHR, genomics, and clinical notes using NLP (spaCy/BERT/BioBERT) and scalable Spark-based processing. Also led development of domain-specific LLM/NLP systems for chatbots and semantic search, deploying models via FastAPI/Flask and improving retrieval with FAISS-backed, fine-tuned clinical embeddings and RAG-style workflows.”

PythonRSQLPandasNumPyScikit-learn+132
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SK

Sai Krishna Yemineni

Screened

Mid-level AI/ML Engineer specializing in healthcare NLP, real-time risk systems, and ML platforms

Massachusetts, USA5y exp
Johnson & JohnsonRivier University

“LLM-focused customer-facing engineer who repeatedly takes document Q&A and agentic prototypes into secure, monitored production systems. Experienced in reducing hallucinations via RAG + guardrails, diagnosing retrieval/embedding issues in real time, and partnering with sales to run metrics-driven PoCs that overcome accuracy/security objections and drive adoption.”

PythonRC++SQLBashTensorFlow+107
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SD

Sarath Dunga

Screened

Mid-level Full-Stack Developer specializing in cloud microservices and AI/ML integration

Remote, USA4y exp
eBayArizona State University

“Full-stack engineer (~3 years) with eBay production experience building and operating high-scale, event-driven Python microservices for order processing and AI-powered recommendations (Kafka/Redis/FastAPI on AWS with Prometheus/Grafana). Also delivered polished React+TypeScript analytics dashboards and designed high-concurrency PostgreSQL schemas with significant latency reductions. Recently built AI-agent orchestration and an interactive node-based requirements dashboard for Siemens Polarion via MCP servers, improving user interaction by ~17.8%+.”

Anomaly detectionAuthenticationAuthorizationAWSAWS CodePipelineAWS Lambda+183
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RM

Rishitha Madipelli

Screened

Mid-level Software Engineer specializing in cloud-native distributed systems and streaming data

Austin, TX7y exp
TeslaGeorge Mason University

“Backend/product engineer with Tesla experience building and operating a real-time OTA update monitoring and fleet analytics platform at massive scale (telemetry from 3M+ vehicles). Delivered end-to-end systems across Kafka-based ingestion, TimescaleDB/Postgres analytics modeling, FastAPI/GraphQL APIs, and React/TypeScript dashboards, and handled production scaling incidents on AWS EKS during major rollout spikes.”

PythonJavaTypeScriptSQLAngularSpring Boot+114
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