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AI/ML Architect
The vacancy has expired
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SalaryBest in the industryLocationBengaluruIndustryInformation TechnologyJob Description
Job Description- AI/ML Architect
Experience : 10 to 15 years
Hybrid based at Bengaluru
- 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.
- Hands-on programming and architecture capabilities in Python
- 10+ years of Experience in Enterprise applications development
- Experience in implementing and deploying 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.
- 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.
Skills And Expertise
- 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.
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