Posted:2 months ago|
Platform:
Remote
Full Time
Architecture design, total solution design from requirements analysis, design and engineering for data ingestion, pipeline, data preparation & orchestration, applying the right ML algorithms on the data stream and predictions. Responsibilities: Defining, designing and delivering ML architecture patterns operable in native and hybrid cloud architectures. Research, analyze, recommend and select technical approaches to address challenging development and data integration problems related to ML Model training and deployment in Enterprise Applications. Perform research activities to identify emerging technologies and trends that may affect the Data Science/ ML life-cycle management in enterprise application portfolio. Implementing the solution using the AI orchestration Requirements: Hands-on programming and architecture capabilities in Python, Java, Minimum 6+ years of Experience in Enterprise applications development (Java, . Net) Experience in implementing and deploying Experience in building Data Pipeline, Data cleaning, Feature Engineering, Feature Store Experience in Data Platforms like Databricks, Snowflake, AWS/Azure/GCP Cloud and Data services Machine Learning solutions (using various models, such as Linear/Logistic Regression, Support Vector Machines, (Deep) Neural Networks, Hidden Markov Models, Conditional Random Fields, Topic Modeling, Game Theory, Mechanism Design, etc. ) Strong hands-on experience with statistical packages and ML libraries (e. g. R, Python scikit learn, Spark MLlib, etc. ) Experience in effective data exploration and visualization (e. g. Excel, Power BI, Tableau, Qlik, etc. ) Extensive background in statistical analysis and modeling (distributions, hypothesis testing, probability theory, etc. ) Hands on experience in RDBMS, NoSQL, big data stores like: Elastic, Cassandra, Hbase, Hive, HDFS Work experience as Solution Architect/Software Architect/Technical Lead roles Experience with open-source software. Excellent problem-solving skills and ability to break down complexity. Ability to see multiple solutions to problems and choose the right one for the situation. Excellent written and oral communication skills. Demonstrated technical expertise around architecting solutions around AI, ML, deep learning and related technologies. Developing AI/ML models in real-world environments and integrating AI/ML using Cloud native or hybrid technologies into large-scale enterprise applications. In-depth experience in AI/ML and Data analytics services offered on Amazon Web Services and/or Microsoft Azure cloud solution and their interdependencies. Specializes in at least one of the AI/ML stack (Frameworks and tools like MxNET and Tensorflow, ML platform such as Amazon SageMaker for data scientists, API-driven AI Services like Amazon Lex, Amazon Polly, Amazon Transcribe, Amazon Comprehend, and Amazon Rekognition to quickly add intelligence to applications with a simple API call). Demonstrated experience developing best practices and recommendations around tools/technologies for ML life-cycle capabilities such as Data collection, Data preparation, Feature Engineering, Model Management, MLOps, Model Deployment approaches and Model monitoring and tuning. Back end: LLM APIs and hosting, both proprietary and open-source solutions, cloud providers, ML infrastructure Orchestration: Workflow management such as LangChain, Llamalndex, HuggingFace, OLLAMA Data Management : LLM cache Monitoring: LLM Ops tool Tools & Techniques: prompt engineering, embedding models, vector DB, validation frameworks, annotation tools, transfer learnings and others Pipelines: Gen AI pipelines and implementation on cloud platforms (preference: Azure data bricks, Docker Container, Nginx, Jenkins)
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