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Collaborate with data scientists and subject matter experts to build and optimize data pipelines for industrial AI and ML-Ops solutions. Ensure data integrity, cleanliness, and reliability while tracking performance metrics for 24/7 operational systems.
Maya HTT is a world leading developer of digital industries software solutions. The world’s top tier engineering and manufacturing organizations rely on MAYA’s experience and expertise to achieve the full potential of their software investment. Maya HTT is at the forefront of innovation technology. Our team delivers extensive engineering and industrial AI expertise along with cutting-edge digitalization solutions with a focus on industrial data, AI, machine learning, industrial edge, IIoT, operational technologies, and Industry 4.0.
Role Summary:
As a Data Engineering Scientist, you'll work closely with a team of data scientists and engineering/manufacturing/operations subject matter experts, mostly with data coming from operational technologies (OT), historians, industrial sensor data, video streams data, and audio stream data. You will also work with engineering and manufacturing experts in order to solve industrial operations business use cases by creating data pipelines to feed ML-Ops systems running machine learning, deep learning and advanced analytics in general.
You will be called upon to align the data available, how to access it securely, transform it, merge and fuse it with other data streams, in order to pre-process the right data and at the right frequency, and make that data reliably useable by the right AI technology(ies). Your focus as part of the team is to select the appropriate data pipelines to best solve the engineering and manufacturing challenges posed collaboratively by our clients and our own Maya engineering and manufacturing experts. You will collaborate with other team members and architect the right data pipelines which will help create a practical AI-Ops (or ML-Ops) solutions for effective decision making by Maya HTT’s clients. As is often the case in newer engineering and manufacturing applications leveraging AI technologies, you will work in an agile fashion to build data pipelines and design experiments to extract the value within the data provided. Given Maya HTT’s focus in engineering and manufacturing AI applications, excellent understanding of time-series from industrial sensors is a big plus, and video processing and audio data processing is a plus.
What to expect as your main responsibilities:
Collaborating with data scientists to create the right data pipelines
Working with Aveva PI AF, EF and other PI tools
Ensuring the data engineering is done properly while remaining agile in the gradual data validation, data merging, and in general produce the right data aligned to the business use case to solve
Defining the data quality metrics to be tracked from a business perspective, and metrics to be optimized on
Checking data cleanliness and identifying dataset biases whenever relevant
Experimenting, building, and optimizing selected data pipeline and methods
Leveraging data mining to uncover interesting patterns or correlation using state-of-the-art methods to help data scientists and subject matter experts
Augmenting datasets either algorithmically or using third party sources of information when needed
Enhancing data collection procedures to include information that is relevant for building better engineering and manufacturing automation & optimization systems
Interacting with data engineering specialists to ensure data processing, cleansing, and verifying the integrity of data used for the ML-Ops is reliably done and available during 24/7 operations
Presenting data mining and early data finding results in a clear manner
Collaborating with 24/7/365 ML-Ops team and ensuring the tracking of data feeding the ML/AI model performance over time
Integrating time-series data into geo-spatial tools for increased data visibility in industry
Minimum Requirements:
A Bachelor, Master degree or PhD
Excellent understanding of data engineering, data mining, and statistical modelling
Experience with common data engineering toolkits such as ex-OSIsoft Aveva PI (a must have), Insights Hub, Azure IoT, AWS IIoT/Sitewise
Experience with geo-spatial toolkits such as Esri ArcGIS is a plus
Experience with timeseries database, especially if you have hands-on experience with industrial sensors data
Excellent scripting skills (typically python, SQL, PowerShell)
Experience with cloud hosting and solutions (Aveva, AWS, etc)
Good data story communication skills is a big plus
Experience with data visualisation tools
Experience using query languages such as SQL
Experience with NoSQL databases
Good teamwork skills
Why join Maya HTT?
Permanent Position and Competitive Base Salary.
100% Employer-Paid Benefits starting from Day One: Medical, Dental, Vision, Life, Short/Long Term disability insurances.
Retirement Savings: Group RRSP / DPSP Plan with Employer Contributions open to join from Day One
Career Growth Opportunities: Our flexible career paths allow you to grow, and we like to promote internally.
Learning Opportunities: Learn from the best in the industry and develop your skills.
Generous Time-Off Policy: We promote a Healthy Work-Life Balance with a Flexible PTO Policy, Sick/Personal Days, and a Summer Flex Schedule.
Structured Onboarding Program: We’re invested in your success; you’ll have team members to support you and provide a wide range of assistance from Day One.
Join an award-winning company that is recognized worldwide as an industry leader.
Our Candidate Experience Flow: HR Screen - Virtual Interviews using Microsoft Teams - Job Offer
Maya HTT is an equal opportunity employer and committed to fostering diversity and inclusion in the workplace. Accommodations are available upon request for candidates taking part in all aspects of the hiring and selection process.
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