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Vetted Data Scientists in New York

Pre-screened and vetted in New York.

PythonSQLDockerPyTorchTensorFlowscikit-learn
MM

MICHAEL MAHON

Senior Data Scientist / ML Engineer specializing in LLMs, generative AI, and MLOps

New York, NY7y exp
MetaColumbia University
A/B TestingAgileAirflowAmazon AthenaAnomaly DetectionAurora+92
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FS

Frederik Stihler

Mid-level Data Scientist specializing in ML for healthcare and strategy analytics

New York, NY5y exp
Columbia University Irving Medical CenterUC Berkeley
A/B TestingAPI IntegrationAWSAWS EC2AWS S3AutoGen+60
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JV

John Villarraga

Staff-level Software Engineer specializing in AI, data platforms, and cloud infrastructure

New York, NY8y exp
GrowthLoopCarnegie Mellon University
PythonNode.jsSQLTypeScriptRuby on RailsCelery+50
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PC

Preethi Chanamala

Mid-level Data Scientist specializing in GenAI, NLP, and deep learning

New York, NY3y exp
PwCUniversity of Florida
A/B TestingApache AirflowApache KafkaApache SparkARIMAAWS+101
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PC

Preethi Chanamala

Mid-level Data Scientist specializing in GenAI, NLP, and deep learning

New York, NY3y exp
PwCUniversity of Florida
A/B TestingApache AirflowApache KafkaApache SparkARIMAAWS+103
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PN

Praveen Nutulapati

Screened

Mid-level Generative AI Engineer specializing in LLM fine-tuning, RAG, and agentic systems

New York, NY6y exp
JPMorgan ChaseUniversity of Central Missouri

Built and deployed a production multi-agent RAG system at JPMorgan Chase to automate regulated credit analysis and compliance clause discovery across large internal policy/document libraries. Implemented LangGraph-based supervisor orchestration with structured state management (Azure OpenAI) to support long-running, resumable workflows, plus hybrid retrieval + re-ranking and guardrails for reliability. Strong at evaluation/observability (trace logging, LLM-judge, HITL) and at communicating results to non-technical stakeholders via Power BI embeds and Streamlit prototypes.

A/B TestingAgileAI Content SafetyAI EthicsAirflowAmazon Bedrock+184
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PK

Puraha Kotha

Mid-level Data Scientist specializing in NLP, GenAI, and time-series modeling

New York, NY5y exp
Goldman SachsUniversity at Buffalo
A/B TestingAnomaly DetectionARIMAARMAApplied AI ResearchAutoencoders+121
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PK

Praveen Kumar Anwla

Senior Data Scientist specializing in LLMs, Agentic AI, and MLOps

New York, NY9y exp
Rel8ed AnalyticsUniversity of Rochester
Agentic AIArtificial Intelligence (AI)Machine LearningMLOpsLLMOpsCI/CD+75
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PM

Priyanshu Maurya

Screened

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.

AirflowAnomaly DetectionAPI DeploymentARIMAAWSAWS CloudWatch+105
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DK

David Kidwell

Screened

Senior AI/ML Data Scientist specializing in NLP, computer vision, and MLOps

New York, NY10y exp
Canoe IntelligenceBinghamton University

Applied LLMs and a graph-RAG architecture in Neo4j to automate an accounting firm's cross-checking of transactional books against tax regulations, indexing 1,000+ pages into a knowledge graph with vector search. Combines agentic LLM workflows with classical NER (Hugging Face/NLTK) and validates using expert-labeled held-out data plus precision/recall and measured accountant time savings after deployment.

PythonScalaRCC++SQL+129
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SM

Subhasmita Maharana

Screened

Mid-level Data Scientist specializing in NLP/LLMs, time series forecasting, and MLOps

New York, NY6y exp
CitigroupKent State University

Data/ML practitioner with hands-on experience building NLP systems from prototype to production: delivered a Twitter sentiment classifier with robust preprocessing, SVM modeling, and Power BI reporting, and built entity-resolution pipelines for messy multi-source customer data (reporting ~95% improvement in unique entity identification). Also implemented semantic linking/search using SBERT embeddings with FAISS vector retrieval and domain fine-tuning (reported ~15% precision lift), and applies production workflow best practices (Airflow/Prefect, Docker, Azure ML/Databricks, Great Expectations).

A/B TestingApache AirflowARIMAAutoKerasAuto-sklearnAutoML+170
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HR

Harshavardhan Reddy

Screened

Mid-level AI/ML Data Scientist specializing in NLP, computer vision, and risk analytics

Albany, NY5y exp
Capital OnePace University

ML/AI engineer with Capital One experience building production-grade customer segmentation and fraud detection systems combining NLP (transformers) and anomaly detection. Strong MLOps and orchestration background (PySpark ETL, MLflow, Airflow, Docker/Kubernetes, Azure ML) with real-time monitoring/alerting and performance optimizations like quantization and caching, plus proven ability to deliver business-facing insights through Power BI/Tableau for marketing stakeholders.

PythonRSQLPySparkScalaJava+105
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SM

Saiteja Miyapuram

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

New York, USA6y exp
WalmartSUNY
A/B TestingAgileAirflowAMPAnomaly DetectionAPI Development+122
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SJ

Shraddha Jathar

Mid-level Data Scientist specializing in fraud detection and ML pipelines

New York, NY4y exp
MastercardUniversity of Texas at Arlington
A/B TestingAI-Driven Decision Support SystemsAmazon EC2Amazon S3Apache AirflowApache Spark+78
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NS

Nagulmeera Shaik

Mid-level Data Scientist specializing in NLP and generative AI

New York, NY4y exp
Credit SuissePace University
PythonRSQLJupyter NotebookGoogle ColabMachine Learning+75
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DA

Douglas Augustine

Senior Data Scientist specializing in applied ML, NLP, and computer vision

Alden, NY8y exp
Lily AIUniversity of Florida
PyTorchTensorFlowScikit-learnBERTGPT-based modelsSpaCy+54
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SM

Sri Mallika Ponnada

Mid-level GenAI/ML Engineer specializing in LLM agents and RAG for fraud detection

New York, United States4y exp
American ExpressCleveland State University
Agent engineeringAmazon OpenSearch ServiceAmazon RedshiftAWSAzureAzure Synapse Analytics+45
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PT

Pallapothu Tejaswini

Mid-level Data Scientist specializing in experimentation, personalization, and decision intelligence

New York, NY3y exp
HBO MaxNew Jersey Institute of Technology
A/B TestingAnomaly DetectionApache AirflowARIMAAvroAWS+99
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NV

Nandini Vadlamudi

Mid-level AI/ML Engineer specializing in credit risk, fraud detection, and NLP in financial services

New York, NY6y exp
Goldman SachsPace University
PythonRScalaPandasNumPyJupyterLab+87
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NX

Nan Xiao

Junior AI Engineer specializing in LLMs, RAG, and agent evaluation

New York, NY1y exp
SummonerColumbia University
A/B TestingAdvanced Data AnalysisAdvanced Machine LearningAlgorithm DesignAlgorithms for Data ScienceAPI Development+94
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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 TestingAgileAirSimAmazon API GatewayAnomaly DetectionAngularJS+143
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LK

Lokeshwar Kodipunjula

Screened

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

New York, NY4y exp
AIGUniversity of Texas at Arlington

LLM/ML platform engineer with hands-on experience taking an LLM document summarization prototype into a production-grade service on AWS EKS, emphasizing low-latency inference, drift monitoring, and safe CI/CD rollouts (canary + rollback). Strong in real-time debugging of agentic/RAG systems (tracing, retrieval/index drift fixes) and in developer enablement through practical workshops (Docker/Kubernetes/FastAPI) plus pre-sales support via demos and benchmarks to close pilots.

PythonSQLRJavaJavaScriptScala+148
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JK

Jareena kowsar shaik

Screened

Mid-level Machine Learning & GenAI Engineer specializing in LLMs, RAG, and NLP

New York, NY6y exp
Morgan Stanley

Built and deployed an LLM-powered customer support assistant (“Notable Assistant”) focused on automating common post-customer queries while maintaining multi-turn context and meeting scalability/latency needs. Experienced with production orchestration and operations using Kubernetes and Apache Airflow (DAG-based ETL, scheduling, monitoring/alerts), and has partnered closely with customer service stakeholders to align chatbot behavior with brand voice through iterative testing.

A/B TestingAgileAmazon BedrockAmazon RedshiftAWSAWS Bedrock+209
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