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Vetted Decision Trees Professionals

Pre-screened and vetted.

Decision TreesPythonSQLDockerscikit-learnAWS
DM

Deepthi Mundarinti

Mid-level Data Engineer specializing in cloud ETL, streaming, and data warehousing

TX, USA5y exp
JPMorgan ChaseSaint Louis University
PythonNumPyPandasPySparkScikit-learnTensorFlow+109
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AC

Akshansh Chaudhry

Senior Computer Vision Engineer specializing in medical imaging and MLOps

Menlo Park, CA9y exp
StrykerUniversity of Texas at Arlington
AgileAndroidAWSAzure Blob StorageAzure DevOpsAzure Machine Learning+147
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MV

Mounika Vadthya

Senior Data Scientist specializing in Generative AI, NLP, and ML for banking and healthcare

Taylor, TX8y exp
Southside BankUniversity of North Texas
A/B TestingAnomaly DetectionBashBusiness IntelligenceCI/CDClustering+142
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PS

Pavan Sappidi

Mid-level Data Scientist specializing in NLP, MLOps, and Generative AI

USA6y exp
CitigroupSaint Louis University
PythonRSQLJupyter NotebookMachine LearningDeep Learning+79
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PM

Prathyusha Murala

Junior Data Scientist specializing in risk modeling, NLP, and predictive analytics

Syracuse, NY2y exp
Syracuse UniversitySyracuse University
PythonSQLRPL/SQLMySQLPostgreSQL+102
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SK

Sonika Koganti

Senior Data Scientist specializing in machine learning and cloud analytics

Westfield, IN7y exp
UnitedHealth GroupSacred Heart University
A/B TestingAgileAPI IntegrationAWSAWS LambdaClassification+74
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SB

Soumya Baddham

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

USA5y exp
Morgan StanleyUniversity of Kansas
PythonRSQLJupyter NotebookNumPyPandas+80
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PL

Poojitha Lysetti

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

USA4y exp
JPMorgan ChaseCalifornia State University, Fullerton
Artificial IntelligenceMachine LearningDeep LearningGenerative AILarge Language Models (LLMs)Computer Vision+92
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AY

Anushka Yadav

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

USA4y exp
Morgan StanleyRochester Institute of Technology
Anomaly DetectionAWSAWS LambdaAzure Blob StorageBERTBitbucket+103
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JA

Jahnavi Aella

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

Remote, USA4y exp
MizuhoWestern Michigan University
PythonJavaRSQLJavaScriptTypeScript+99
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SR

Sriman Reddy

Mid-level Data Scientist specializing in ML, NLP, and cloud deployment

Columbus, OH4y exp
Capital OneClark University
PythonSQLRETLMachine LearningArtificial Intelligence+100
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CH

Chris Harry Patrick

Screened

Mid-level AI/ML Engineer specializing in healthcare, risk modeling, and MLOps

Milwaukee, WI3y exp
UnitedHealth GroupUniversity of Wisconsin–Milwaukee

“Robotics software engineer who built a ROS Noetic-based perception-to-control stack for a pick-and-place robotic arm, integrating OpenCV/TensorFlow vision with motion planning and PID tuning. Demonstrated strong real-time debugging skills (rosbag, queue/latency fixes) and experience deploying reproducible robotics environments with Gazebo simulation, Docker, and GitLab CI.”

PythonSQLPandasNumPyScikit-learnClassification+103
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CD

Christina Darstbanian

Screened

Mid-level DevOps & Cybersecurity Software Developer specializing in IAM/CIAM automation

Montreal, Canada11y exp
AtekoConcordia University

“Frontend engineer who led the end-to-end UI for an internal employee catalog tool at Genetec, building React/TypeScript dashboards with complex search filters. Emphasizes tight product-owner feedback loops (weekly demos), Figma-based design alignment, and disciplined delivery practices using CI/CD, automated tests, and version tagging for rollouts/reverts.”

JestAWSAmazon S3JenkinsTerraformServiceNow+103
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PK

Pravallika Kilari

Screened

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

USA5y exp
CVS HealthUniversity of Houston

“AI/ML engineer with CVS Health experience deploying production LLM systems in regulated healthcare settings, including a large-scale RAG solution (1M+ documents) built for compliance-grade, auditable policy/regulatory Q&A with strong anti-hallucination controls. Also delivered an NLP summarization system for physician notes/case narratives by partnering closely with non-technical care operations stakeholders and iterating via prototypes, dashboards, and feedback loops.”

Anomaly DetectionAWSAWS LambdaAzure Machine LearningBERTCI/CD+128
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VN

Venkatesh Nagubandi

Screened

Mid-level Software Engineer specializing in ML, LLM apps, and cloud data systems

Tracy, California4y exp
GeneaUC Santa Cruz

“Built a production SQL chatbot for access-log analytics that replaced manual custom report requests with natural-language querying, using LangGraph and a ChromaDB-backed RAG pipeline for grounded, consistent answers. Implemented a privacy-preserving design where the LLM never sees raw customer data (only query metadata) and has experience building multi-agent/tool-calling systems with LangGraph (DeepAgents), including solving sub-agent communication drift via self-reflection.”

PythonJavaJavaScriptRPyTorchTensorFlow+84
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CC

Chandan Chalumuri

Screened

Mid-level Data Scientist specializing in ML, NLP, and Generative AI

Tempe, AZ4y exp
MetLifeArizona State University

“Data engineering / ML practitioner with experience at MetLife building transformer-based sentiment analysis over large unstructured datasets and productionizing pipelines with Airflow/PySpark/Hadoop (reported 52% efficiency gain). Also implemented embedding-based semantic search using Pinecone/Weaviate to improve retrieval relevance and enable RAG for customer support and document matching use cases.”

A/B TestingAgileApache AirflowApache HadoopApache KafkaApache Spark+170
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NG

Nishchal Gante

Screened

Mid-level Data Scientist specializing in MLOps and Generative AI

Illinois, IL4y exp
BNY MellonIllinois Institute of Technology

“Robotics software/ML engineer who built perception and navigation-related ML systems for autonomous supermarket carts, including object detection, shelf recognition, and obstacle avoidance. Strong ROS/ROS2 practitioner who optimized real-time performance (reported 50% latency reduction) and deployed containerized ROS/ML pipelines at scale using Docker, Kubernetes, and CI/CD.”

A/B TestingAgileAmazon API GatewayAmazon BedrockAmazon EC2Amazon RDS+133
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YN

Yogendra Nalam

Screened

Mid-level Data Scientist specializing in ML, NLP, and Generative AI

Michigan, USA3y exp
Ally FinancialUniversity of Michigan-Dearborn

“GenAI/ML engineer with production experience at Cognizant and Ally Financial, building end-to-end LLM/RAG systems and ML pipelines. Delivered a domain chatbot trained from 90k tickets and 45k docs, improving intent accuracy (65%→83%), scaling to 800+ concurrent users with 99.2% uptime and sub-150ms latency, and driving +14% customer satisfaction. Strong in Azure ML + DevOps CI/CD, Dockerized deployments, and explainable/PII-safe modeling using SHAP/LIME to satisfy stakeholder trust and GDPR needs.”

AgileAnomaly DetectionAPI DevelopmentAWSAzure DevOpsAzure Machine Learning+107
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HB

Harideep Balusa

Screened

Mid-level AI/ML Engineer specializing in FinTech risk, fraud detection, and GenAI/RAG systems

USA6y exp
Freddie MacUniversity of Wisconsin

“Built and productionized Azure-based LLM/RAG systems for regulatory/compliance use cases, including automating analyst research and compliance report generation across large unstructured document sets. Demonstrates strong practical depth in hallucination mitigation, hybrid retrieval tuning (BM25 + embeddings), and production MLOps (Databricks, Cognitive Search, AKS, Airflow/MLflow), plus proven ability to deliver auditable, explainable solutions with non-technical compliance teams.”

PythonRSQLScalaMachine LearningDeep Learning+125
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MS

Muaaz Syed

Screened

Mid-level AI/ML Engineer specializing in NLP and conversational AI

Richardson, TX4y exp
CVS HealthUniversity of Texas at Dallas

“ML/NLP engineer focused on real-time IT ops analytics, building a predictive maintenance/anomaly detection platform end-to-end (multi-source ETL, streaming, modeling, and production deployment on GCP/Vertex AI). Uses deep learning (LSTMs, autoencoders/VAEs) plus embeddings (SentenceBERT) and vector search to improve incident correlation and search, citing ~40% reduction in duplicate alert noise.”

AgileWaterfallScrumPythonFastAPIDjango+114
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