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2 Openings
Position: Sr Data Scientist PhD with GenAI & NLP
Location; District of Columbia (Hybrid)
Duration: 12 Months
8-10 Years
Sr Data Scientist PhD with GenAI & NLP - Hybrid on site
Minimum Qualifications:
Work or educational background in one or more of the following areas: machine learning, computational linguistics, deep learning, ratification intelligence, data science and/or data analytic, generative AI, symbolic AI, causal AI, operations research, computer science, Mathematics, business analytics, or knowledge management.
8-12 years of demonstrated experience programming with R/Python, Linux, and Spark in AWS cloud environment, or knowledge and algorithmic design experience in Python (3+ years)
Proficient with Amazon AWS Sagemaker, Jupyter Notebook and Python Scikit, Deep Learning, Machine Learning tools such as TensorFlow
Experience with image processing models such as Coco, CLIP, ResNet or comparable models
Demonstrated experience with machine learning techniques including natural language processing, and Large language Models (GPTv4-o1, o3, OpenAI APIs, Llama, Claude, etc).
Experience developing AI agents and development proficiency using agentic programming
Proficient in Natural language processing (NLP) and Natural language generation (NLG) including prior projects in any of the following categories: top modeling of text, sentiment analysis of text, part of speech tagging, Name Entity Recognition (NER), Bag of Words, text extraction
Experience building and working with any of these components: Vector DB, BERT, RoBERTa (or comparable tools), Spacy, LLM and GenAI tools. Experience with LoRA, LangChain, RAG, LLM Fine Tuningand PEFT, Knowledge Graphs.
Strong skills in developing GraphRAG, Chain of Thought (CoT), Tree of Thought (ToT), Reinforcement learning and AI development architectures with Human-in-the-Loop (HITL
Demonstrated experience with SQL and any relational database technologies, such as Oracle, PostgreSQL, MySQL, RDS, Redshift, Hadoop EMR, Hive, etc.
Demonstrated experience processing structured and unstructured data sources, data cleansing, data normalization and prep for analysis
Demonstrated experience with code repositories and build/deployment pipelines, specifically Jenkins and/or Git/GitHub/GitLab.
Demonstrated experience using Tableau, or Kibana, Quicksights or other similar data visualizations tools.
Very comfortable working with ambiguity (e.g. imperfect data, loosely defined concepts, ideas, or goals)
Qualifications & Requirements
Education: MS in Computer Science, Statistics, Math, Engineering, or related field, PhD preferred.
3+ years of relevant experience in building large scale machine learning or deep learning models and/or systems
1+ year of experience specifically with deep learning (e.g., CNN, RNN, LSTM)
1+ year of experience building NLP and NLG tools.
Experience with wide range of LLMs (Llama, Claude, OpenAI, Cohere, etc.), LoRA, LangChain, RAG, LLM Fine Tuning and PEFT are preferred.
Demonstrated skills with Jupyter Notebook, AWS Sagemaker, or Domino Datalab or comparable environments
Passion for solving complex data problems and generating cross-functional solutions in a fast-paced environment
Knowledge in Python and SQL, object oriented programming, service oriented architectures
Strong scripting skills with Shell script and SQL
Strong coding skills and experience with Python (including SciPy, NumPy, and/or PySpark) and/or Scala.
Knowledge and implementation experience with NLP techniques (topic modeling, bag of words, text classification, TF/IDF, Sentiment analysis) and NLP technologies such as Python NLTK, or Spacy or comparable technologies
Knowledge and implementation experience with statistical and machine learning models (regression, classification, clustering, graph models, etc.)
Preferred Qualifications
Hands on experience building models with deep learning frameworks like Tensorflow, Keras, Caffe, PyTorch, Theano, H2O, or similar
Experience with LLM Agents, Agentic programming
Experience with search architecture (for instance: Solr, ElasticSearch, AWS OpenSearch)
Experience with building querying ontologies such as Zeno, OWL, RDF, SparQL or comparable are preferred
Knowledge & experience with microservices, service mesh, API development and test automation are preferred
Demonstrated experience using Docker, Kubernetes, and/or other similar container frameworks are preferred
Additional Job Qualifications:
Ability to translate business ideas into analytics models that have major business impact.
Demonstrated experience working with multiple stakeholders.
Demonstrated communication skills, e.g. explaining complex technical issues to more junior data scientists, in graphical, verbal, or written formats.
Demonstrated experience developing tested, reusable and reproducible work.
Requirements
Interview Process/# of Rounds:
Interview Process/# of Rounds:
Direct manager contact
2 rounds
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