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Saloni J.
Data Scientist
Saloni on datatieteilijä, jolla on yli viiden vuoden kaupallinen kokemus ja joka on erikoistunut Pythoniin, SQL:ään, koneoppimiseen, Pandasiin, NumPyyn ja PySparkiin. Hän on taitava kääntämään monimutkaisia tietoja käyttökelpoisiksi oivalluksiksi ja kehittämään AI/ML-malleja, jotka tuottavat liiketoiminta-arvoa ja innovaatioita.
Yksi hänen vaikuttavimmista hankkeistaan oli LLM-pohjaisen kehyksen suunnittelu Wells Fargon asiakasvuorovaikutusten analysoimiseksi, mikä tehosti pankin digitaalista strategiaa ja paransi itsepalvelukokemusta.
Saloni kunnostautuu markkinointikampanjoiden optimoinnissa, LLM:n hyödyntämisessä asiakkaiden kipupisteiden paljastamisessa ja prosessien automatisoinnissa tehokkuuden lisäämiseksi. Hänen asiantuntemuksensa on teknisten edistysaskeleiden ja todellisten liiketoimintasovellusten yhdistämisessä.
Tärkein asiantuntemus
- ElasticSearch 2 vuotta

- Teradata 5 vuotta

- MySQL 5 vuotta
Muut taidot
- Tableau 3 vuotta

- Apache Spark 3 vuotta
- SAS 2 vuotta

Valittu kokemus
Työllisyys
Senior Data Scientist
Scouty - 3 months
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Designed and developed a hybrid search solution within 3 months on Elasticsearch, leveraging vector search for semantic understanding and BM25 for lexical precision;
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Integrated a Large Language Model (LLM) to refine results, ensuring the top-ranked items were not just relevant but also the most contextually appropriate for the user's query;
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Engineered a custom ranking framework to seamlessly blend search scores with key business metrics like product popularity, availability, and promotional status, creating a system that was both intelligent and commercially effective;
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Delivered a high-performance, scalable search platform that significantly improved the customer experience by providing faster, more intuitive, and highly relevant results.
Tekniikat:
- Tekniikat:
MongoDB
AWS
ElasticSearch
Python
NumPy
Pandas
Git
Scikit-learn
- Computer Vision
Large Language Models (LLM)
Hugging Face Transformers
-
Data Scientist
Wells Fargo - 2 years 3 months
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Solved complex business challenges by applying innovative AI/ML approaches, collaborating with cross-functional teams;
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Communicated data-driven actionable insights to stakeholders across North America (NA), Latin America (LATAM), and Asia-Pacific (APAC) regions;
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Managed end-to-end implementation of solutions, starting from SQL-based data preparation to building AI/ML models using Python;
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Deployed AI/ML solutions on cloud-based platforms, ensuring smooth integration and operational efficiency;
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Worked closely with stakeholders to understand business requirements and translate them into effective AI/ML solutions;
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Ensured scalability and robustness of the AI/ML models deployed on cloud platforms for long-term value;
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Led project management tasks, coordinating timelines and deliverables across diverse teams and regions.
Tekniikat:
- Tekniikat:
MySQL
ElasticSearch
Apache Spark
Python
Azure
- Data Science
Google Cloud
Teradata
TensorFlow
NumPy
Pandas
Neo4j
PyTorch
Git
SciPy
Scikit-learn
Matplotlib
- NLP
Machine Learning
- Computer Vision
Tableau
LangChain
Large Language Models (LLM)
-
Junior Data Scientist
Wells Fargo - 2 years 5 months
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Produced performance reports for 15 ML models, driving over $10M in annual benefits by extracting actionable insights from crucial KPIs using SAS, and guiding business decisions on future strategies;
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Led a team of three junior consultants in developing an automated model monitoring framework, streamlining the oversight of hundreds of models and reducing manual labor by approximately 90% through seamless integration of industry-standard tools such as Python, PySpark, SQL, and Tableau;
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Automated and streamlined the AI/ML model inference process, achieving an 85% reduction in man-hours, significantly improving operational efficiency.
Tekniikat:
- Tekniikat:
MySQL
Apache Spark
Python
NumPy
Pandas
SAS
Git
SciPy
Scikit-learn
Matplotlib
- Data Analytics
Machine Learning
Tableau
-
Data Science Intern
Wells Fargo - 2 months
-
Successfully increased the profit margin by 2% and annual cost savings of ~$15M by optimizing bidding decisions of mortgage loans using a sophisticated machine learning framework in Python;
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Demonstrated a strong aptitude for data analysis and problem-solving resulting in a full-time offer.
Tekniikat:
- Tekniikat:
Python
NumPy
Pandas
SciPy
Scikit-learn
Matplotlib
Machine Learning
-
Koulutus
BSc.Information Technology
National Institute of Technology Raipur, India · 2016 - 2020
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