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Antino Labs

ML Engineer

Gurgaon · Mid Level

Older listing - lower visibility likelyVerified listingPosted 138d ago

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86Overall
64Skills
97Experience

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What we know about this role

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Window passed - posted 138d ago

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Skills required

32 listed
CI/CDProcess OptimizationDeep LearningFeature EngineeringModel MonitoringMachine LearningApache SparkData Streaming+24 more
CI/CDProcess OptimizationDeep LearningFeature EngineeringModel Monitoring

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Job description

We seek a highly skilled ML Engineer with 3-5 years of industry experience specializing in AI/ML, MLOps, Azure cloud computing, and Python to collaborate with our team of Data Scientists, Data Engineers, and Subject Matter Experts (SMEs).
Candidate should have strong expertise in traditional ML to design, develop, and deploy industrial AI solutions for refinery and petrochemical operations. The role focuses on time-series modeling, forecasting, optimization, and real-time deployment of ML systems that deliver measurable business impact (e.g., energy savings, yield improvement, process optimization).
The candidate will develop, implement, and deploy advanced AI-driven solutions, including traditional ML, deep learning, neural networks, and advanced analytics tailored specifically to the refining and petrochemical industry.
What You'll Be Doing
Design, build and deploy end-to-end AI/ML pipelines for industrial use cases at scale on cloud-based platforms or on-prem server
Select and implement appropriate AI/ML algorithms, and tools
Build and maintain data pipelines using Python & SQL for reliable data flow between IT/OT systems
Develop time-series forecasting and prediction models for process variables (e.g., temperature, pressure, yield, emissions, energy consumption)
Build optimization models for refinery & petrochemical operations (e.g., fuel optimization, throughput maximization, energy efficiency)
Work with high-frequency process data from historians (e.g., PHD, OPC, SCADA systems)
Perform feature engineering on multivariate time-series data, including lag features, rolling statistics, and domain-driven transformations
Train, evaluate, monitor, retrain and maintain AI/ML models
Deploy models into production using APIs, batch pipelines, or real-time streaming systems
Implement model monitoring, drift detection, and retraining pipelines
Collaborate with process engineers, SMEs, operations teams, and business users to translate domain problems into ML solutions
Ensure scalability, reliability, and performance of deployed AI systems
Regularly update and leverage industry trends and advancements in AI, ML, and Optimization technologies.

What We are looking for
3-5 years of experience in AI/ML engineering roles
Bachelors or Masters in Engineering, Computer Science, or equivalent experience
Strong programming skills in Python, R, or a similar language
Robust understanding of machine learning and deep learning methodologies, including training, inferencing, and performance monitoring
Strong experience in time-series modeling, forecasting, and prediction problems
Proven experience in industrial/process data (Oil & Gas / Manufacturing preferred)
Solid expertise with machine learning libraries (Numpy, Pandas, Matplotlib, Scikit-learn, Scipy, Seaborn, NLTK, Flask, Django) and frameworks (TensorFlow, PyTorch, Langchain, Langgraph).
Strong expertise in SQL for data extraction, transformation, and pipeline building
Understanding of feature engineering for time-series data
Experience in building end-to-end ML systems (data → model → deployment → monitoring_>retraining)
Hands-on experience with model deployment
Solid understanding of MLOps concepts:
Model versioning
CI/CD pipelines
Monitoring & alerting
Automated retraining
Experience handling large-scale data using PySpark / Apache Spark (good to have)
Strong analytical and problem-solving capability in industrial contexts
Ability to work closely with cross-functional teams (operations + data + IT)
Clear written and oral communication skills with a strong desire to share knowledge with business users, partners, and co-workers

Good to Have (Not Mandatory)
Exposure to Azure (Azure ML, Data Factory, Databricks, etc.)
Experience with real-time data streaming (Kafka, MQTT, OPC integration)
Exposure to GenAI / LLMs / Agentic systems (secondary skill, not core requirement)
Knowledge of refinery / petrochemical processes (CDU, FCC, Cracker, Boilers, etc.)

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Two ways in

Applicants who checked fit first are 3.1× more likely to hear back

Your match scoreCalculated · locked
86Overall
64Skills
97Experience

Your score for this role already exists

ASAI compared this JD against 41 signals - skills, seniority, domain, stack overlap etc. Add a resume and it unlocks in about 30 seconds.

No credit card · 1 tap with Google

Free · no signup

Get tomorrow's jobs before you have to search

Daily job drops, skill trends and free resources - posted straight to the group. Leave any time.

Join WhatsAppJoin Telegram

No spam. Just jobs and resources.

Why people use ASAI

Someone shared one job with you. ASAI keeps finding the rest.

  • Scored, not searched. Every role ranked against your actual profile.

  • Alerts as often as hourly. Reach new roles while the pile is still small.

  • Skill gaps, spelled out. See exactly which requirements you don't meet yet.

  • Verified jobs, only. Say no to ghost jobs. Your time deserves respect.

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