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Vetted Unsupervised Learning Professionals

Pre-screened and vetted.

Unsupervised LearningPythonSQLDockerTensorFlowscikit-learn
NE

Nour Elaifia

Screened

Junior Full-Stack/AI Engineer specializing in enterprise AI agents and web platforms

San Francisco, CA3y exp
Bland AIMinerva University

“Forward Deployed Engineer focused on taking enterprise LLM voice agents from prototype to production. Led a turnaround on a high churn-risk account by building a custom nested-API integration and preprocessing layer that enabled the LLM to reason over complex order hierarchies, cutting call handle time from 15 minutes to 2 minutes and driving expansions. Strong in real-time agent/workflow debugging, developer workshops, and sales partnership for adoption.”

PythonJavaScriptTypeScriptNode.jsReactNext.js+69
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RR

Rishitha reddy katamareddy

Screened

Mid-level Generative AI & Machine Learning Engineer specializing in agentic LLM systems

USA4y exp
OptumUniversity at Buffalo

“Built and deployed a production agentic LLM knowledge assistant that answers complex questions over internal documents, APIs, and databases using a RAG architecture (FAISS/Pinecone) and LangChain/LangGraph orchestration. Emphasizes production-grade reliability and hallucination control through grounding, confidence thresholds, validation, retries/fallbacks, and full observability (logging/metrics/traces) with continuous evaluation and feedback loops.”

Generative AILarge Language Models (LLMs)LangChainLangGraphMulti-Agent SystemsReAct+175
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SK

Sravan Kumar Jajam

Screened

Mid-level Data Scientist / ML Engineer specializing in streaming ML systems for healthcare and IoT

Urbandale, IA4y exp
John DeereAuburn University at Montgomery

“ML/GenAI engineer with production experience building an LLM-powered governance layer that summarizes verified drift/performance signals into validation reports and release notes, designed for regulated environments with de-identification and non-blocking fallbacks. Strong Airflow-based orchestration background across healthcare and finance, integrating Databricks/Spark and MLflow for scalable retraining/monitoring. Demonstrated ability to partner with non-technical healthcare operations teams to deliver actionable risk-scoring outputs via dashboards and automated reporting.”

PythonRSQLBashPandasNumPy+127
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SS

Sowmya Sree

Screened

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

Dallas, TX5y exp
Bank of AmericaUniversity of North Texas

“Built production LLM systems including a real-time customer feedback analysis and workflow automation platform using RAG and multi-agent orchestration with confidence-based human escalation, addressing privacy and legacy integration challenges. Also automated ML operations with Airflow/Kubernetes (e.g., daily churn model retraining) cutting retraining time to under 30 minutes, and demonstrates a rigorous testing/monitoring approach plus strong non-technical stakeholder collaboration.”

PythonJavaSpring BootJavaScriptRBash+148
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AR

Ashwini Ramesh Kumar

Screened

Junior AI Software Engineer specializing in LLMs, RAG, and agent workflows

Remote1y exp
UMass Chan Medical SchoolUniversity of Massachusetts Amherst

“Backend/ML-leaning engineer who built a content-based event recommender for FlowMingle using embeddings + HNSW vector search on Google Cloud, with Firebase as the backend and a managed recommendation lifecycle (15 recs/user, daily async generation, weekly deletion) now serving 1500+ users. Also led a cost-driven migration of ConvAI services to Azure AI using parallel request testing from a Unity client, with post-migration monitoring via logs and model evals; contributed to a Massachusetts law-enforcement conversation analysis system by expanding ingestion to PDF/TXT/Excel and multi-file inputs.”

PythonC++SQLPL/SQLGitDocker+112
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KP

Kishan Peesapati

Screened

Senior AI Engineer specializing in Generative AI and RAG applications

8y exp
Keurig Dr PepperGeorge Mason University

“AI engineer who has shipped production LLM systems across customer service and marketing use cases—building a RAG app on Azure OpenAI and speeding retrieval with Redis caching tied to Okta sessions. Also implemented a LangGraph multi-agent workflow that pulls image context from Figma to generate structured HTML marketing emails, adding a verification agent to improve image-selection accuracy while optimizing solution cost for business stakeholders.”

Generative AIMachine LearningDeep LearningRetrieval-Augmented Generation (RAG)Predictive ModelingModel Monitoring+86
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SR

Sharan Raj Sivakumar

Screened

Senior Software Developer specializing in AI/ML automation and cloud-native systems

New York City, NY6y exp
EricssonUniversity at Buffalo

“ML/MLOps practitioner who built production systems for telecom network analytics, including an automated labeling + multi-label Random Forest solution that cut labeling effort by 90% and sped up RCA. Led an Ericsson auto-deployment platform using Airflow, Azure IoT Hub, Docker, and Celery to orchestrate 120+ containerized ML/rule-based deployments, saving ~80 hours of setup per deployment.”

PythonSQLMongoDBRedisMySQLSQLite+86
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NM

Narayanaroyal Marisetty

Screened

Mid-level Data Scientist/ML Engineer specializing in healthcare AI and MLOps

USA4y exp
CVS HealthUniversity at Buffalo

“Designed and deployed an enterprise LLM-powered clinical/pharmacy policy knowledge assistant at CVS Health, replacing manual searches across PDFs/Word/SharePoint with a HIPAA-compliant RAG system. Built end-to-end ingestion and orchestration (Airflow + Azure ML/Data Lake + vector index) with PHI masking, versioned re-embedding, and production monitoring (Prometheus/Grafana), and partnered closely with clinicians/compliance to ensure policy-grounded, auditable answers.”

A/B TestingApache AirflowApache HadoopApache HiveApache KafkaApache Spark+132
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NA

Niveditha A

Screened

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

USA4y exp
UnitedHealth GroupBowling Green State University

“AI/LLM engineer with recent production experience at UnitedHealth Group building an end-to-end RAG system over structured EMR data and unstructured clinical notes, including evidence retrieval, GPT/LLaMA-based reasoning, and a validation layer for reliability. Strong in orchestration (Kubeflow/Airflow/MLflow), prompt engineering for noisy healthcare text, and rigorous evaluation/monitoring with gold-standard benchmarking, plus close collaboration with clinical operations stakeholders.”

PythonNumPyPandasJSONSQLPostgreSQL+152
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HR

Hrishikesh Raghunath

Screened

Mid-level Data Engineer specializing in scalable ETL, streaming analytics, and cloud data platforms

Remote, USA7y exp
Dreamline AICalifornia State University, Fullerton

“At Dreamline AI, built and productionized an AWS-based incentive intelligence platform that uses Llama-2/GPT-4 to extract eligibility rules from unstructured state policy documents into structured JSON, then processes them with Glue/PySpark and serves results via Lambda/SageMaker/API Gateway. Designed state-specific ingestion connectors plus schema validation and automated checks/alerts to handle frequent policy/format changes without breaking the pipeline, and partnered with business/analytics stakeholders to deliver interpretable eligibility decisions via explanations and dashboards.”

A/B TestingAmazon CloudWatchAmazon KinesisAmazon RedshiftAmazon S3Amazon SageMaker+114
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SL

Steven Lee

Screened

Mid-Level Software Engineer specializing in Robotics, AI/ML, and XR

New York, NY4y exp
Engineering ServicesDrexel University

“Candidate states they have worked on many robotics software system projects and has overcome many technical challenges, but declined to provide any project details during the screening and ended the interview early.”

PythonC++HTMLCSSJavaScriptSQL+46
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PM

Pooja Murigappa

Screened

Mid-level AI/ML Engineer specializing in NLP, Generative AI, and MLOps in Financial Services

Austin, TX5y exp
Charles SchwabUniversity of Central Missouri

“ML/LLM engineer at Charles Schwab who built a production loan-advisor chatbot integrated with internal knowledge and loan-calculator APIs, adding strict numeric validation to prevent rate hallucinations and optimizing context to control costs. Also runs ~40 Airflow DAGs orchestrating retraining/ETL/drift monitoring with an automated Snowflake→SageMaker→auto-deploy pipeline, and uses rigorous testing plus canary rollouts tied to business metrics and compliance constraints.”

Amazon DynamoDBApache AirflowApache KafkaApache SparkAWSAWS Glue+183
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MD

Molli Dinesh

Screened

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

Remote, USA4y exp
Marsh McLennanIllinois Institute of Technology

“Built an AI-driven insurance policy summarization platform at Marsh, taking it end-to-end from messy PDF ingestion/OCR and custom extraction through LLM fine-tuning and AWS SageMaker deployment. Delivered measurable impact (25% reduction in manual review time, 99% uptime) and demonstrated strong production MLOps/LLMOps practices with Airflow/Step Functions orchestration, rigorous evaluation (ROUGE + human review), and continuous monitoring for drift, latency, and hallucinations.”

PythonPandasNumPyScikit-learnRSQL+132
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SW

Stephanie Wang

Junior Data Scientist specializing in machine learning and reinforcement learning

San Diego, CA1y exp
University of California, San DiegoUC San Diego
Computer VisionD3.jsDashboardingData CleaningData EngineeringData Preprocessing+75
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AK

Ali Khalid

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

NJ, USA4y exp
Juniper NetworksIndiana Wesleyan University
Artificial IntelligenceBERTClassificationData CleaningData IngestionData Pipelines+103
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SK

Sarthak kar

Mid-level AI/ML Engineer specializing in scalable ML, NLP, and time-series forecasting

USA4y exp
MetLifeSan Diego State University
PythonRSQLMATLABJupyter NotebookTensorFlow+125
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SK

Shilpa Kuppili

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

Harrison, NJ6y exp
HumanaYeshiva University
PythonJavaCC++RSQL+143
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SN

Sahiti Nallamolu

Mid-level AI/ML Engineer specializing in RAG, LLMs, and MLOps for finance

Boston, MA4y exp
Humanitarians.AINortheastern University
Generative AIMachine LearningDeep LearningRetrieval-Augmented Generation (RAG)Large Language Models (LLMs)GPT+94
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VS

Vighnesh Sridhar

Intern Machine Learning Engineer specializing in cloud-based content moderation

San Jose, CA2y exp
Saayam for AllArizona State University
AlgorithmsArtificial IntelligenceAWSAWS LambdaCC+++106
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AA

Anamta Ansari

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

California, USA4y exp
Bank of AmericaCalifornia State University, Fullerton
A/B TestingAWS CloudFormationAWS LambdaBERTClaudeComputer Vision+86
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RA

Rajesh Arabolu

Mid-level Machine Learning Engineer specializing in fraud detection and MLOps

USA4y exp
JPMorgan ChaseWichita State University
PythonRScalaJavaTensorFlowPyTorch+98
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SE

Siddhanth Erramaraju

Mid-level Full-Stack Developer specializing in MERN and AWS

USA3y exp
JPMorgan ChaseUniversity of Alabama at Birmingham
AgileAjaxApache TomcatAWSAWS LambdaBERT+70
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LD

Lalithakumari Damegunta

Mid-level AI/ML Engineer specializing in credit risk, anomaly detection, and generative AI

USA6y exp
Northern TrustManonmaniam Sundaranar University
Anomaly DetectionAWSAWS CloudFormationAWS GlueAWS IAMAWS Lambda+104
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SJ

Sai Joginipelly

Mid-level AI/ML Engineer specializing in enterprise ML, MLOps, and multi-agent systems

USA5y exp
CVS HealthFlorida Atlantic University
A/B TestingAgileApache HadoopApache HiveApache KafkaApache Spark+92
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