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Plateau Govt Signs €8m Contract with Chinese Firm for Rehabilitation of Laminga, Gowon Dams

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Caleb Mutfwang

 

The Plateau State Government has signed an €8 million (₦13.7 billion) contract with China Geochemical Company (CGC) for the rehabilitation of the Laminga and Yakubu Gowon dams under the LOT 11 Plateau State Urban Water Supply Project (PSUWSP).

The counterpart-funded project, supported by the French Development Agency (AFD), also covers reticulation works and the replacement of old pipelines within the Jos and Bukuru Greater Master Plan.

Speaking during the signing ceremony on Friday at Government House, Little Rayfield, Jos, the Secretary to the Government of Plateau State (SGS), Samuel Jatau, said the project reflects the administration’s strong commitment to making portable water accessible to citizens across the state.

He explained that the contract, originally signed by the previous administration in 2019, was abandoned due to non-payment of counterpart funding.

“The contract was inherited from the last administration, but no serious action was taken due to lack of payment of counterpart funding,” Jatau said.

He noted that as an agricultural state, water is essential not only for domestic use but also for irrigation and farming. Jatau acknowledged past criticisms over water scarcity but maintained that the current administration has worked to address the challenge through alternative measures.

“We are all aware that water is life, and without water we cannot thrive. Agriculture is one of our focal areas as a government, and we need water for farming and irrigation. Even without this project moving forward, the government has tried to mitigate the problem by procuring water tankers and drilling boreholes,” he stated.

He further charged the contractors to ensure timely completion of the project, which is expected to be delivered by 2026.

The Managing Director of CGC, Ke You Cheng, assured the government that the company will adhere strictly to contractual terms and deliver quality work within schedule.

Also speaking, the Commissioner for Water Resources, Bashir Lawandi, said the state government will provide water to communities through trucks during the rehabilitation period to minimize disruption of supply.

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NIA Leadership Visits NAICOM, Pledges Stronger Industry-Regulator Collaboration

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The leadership of the Nigerian Insurers Association (NIA), led by its Chairman, Mrs. Ebelechukwu Nwachukwu, has paid a courtesy visit to the National Insurance Commission (NAICOM), pledging stronger collaboration between insurers and the regulator.

The visit centred on advancing the Nigerian Insurance Industry Reform Agenda (NIIRA) 2025 and the Risk-Based Capital (RBC) project, both seen as key to making the insurance market more resilient, competitive and sustainable.

The meeting also afforded both institutions the opportunity to exchange views on strategic initiatives aimed at strengthening market capacity, improving operational efficiency, deepening insurance penetration, and fostering a more robust risk management culture across the industry.

The engagement underscores the importance of sustained partnership between industry operators and the regulator in driving reforms, strengthening policyholder confidence, promoting financial stability, and positioning the Nigerian insurance sector for sustainable growth and increased contribution to national economic development.

The post NIA Leadership Visits NAICOM, Pledges Stronger Industry-Regulator Collaboration appeared first on Business Today NG.

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Mirror Particle is building a ‘world model’ of human behavior

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Startups that promise to predict how humans will behave are having a moment. Over the past year, Simile raised $200 million at a $2 billion valuation; Aaru raised $88 million at a $1 billion valuation; and Humans&, an AI startup that announced a massive $480 million seed round in January at a $4.48 billion valuation, launched Persimmon to model human behavior.

The status quo for human behavior prediction today relies heavily on large language models (LLMs) that are prompted or fine-tuned to role-play as a target demographic. But two-year-old, San Francisco-based Mirror Particle thinks that approach is fundamentally broken.

“It’s like bringing a super soaker to Niagara Falls,” says Abhivyakti Ahuja, co-founder and CEO of Mirror Particle, which provides brands with an AI engine that predicts consumer behavior and the reasons behind it. “LLMs have been trained on hundreds of billions of data points. How much can you influence its behavior by [fine-tuning] with such a small amount of data? It’s still stuck in the past.”

Ahuja doesn’t think LLMs see the world the way a human does. “LLMs are modeling written language, but humans are made of visual perception, spatial reasoning, social intelligence.” Relying on them, she says, means getting insights based on what humans don’t notice, which is beside the point when trying to predict human behavior. 

Mirror Particle is taking another approach: building a foundation model, or as Ahuja describes it, a world model built from scratch that simulates why humans do what they do and how human behavior changes over time. 

“We don’t want to capture the static person,” Ahuja said. “We want to capture the changing person. That means capturing the longitudinal data on how people are changing, what triggers are changing them and to what degree.” If they aren’t changing, she added, “that’s also a signal.”

Mirror Particle has already raised an angel round and says it’s close to closing its first venture round. The company is also competing next week in Startup Battlefield, TechCrunch’s renowned startup competition.

The startup relies on a proprietary combination of data that includes its clients’ customer data, current events, pop culture, social media, and more to model a demographic segment, thinking of it as a system that evolves over time and tracking how motivations shift as it moves through experiences. Much of the focus is on “revealed behavior” — what people actually do rather than self-reported survey answers.

Like its rivals, Mirror Particle’s initial go-to-market strategy focuses on where budgets already exist for these kinds of insights: market research and brand and product strategy. Mirror might, for instance, help a beauty brand not just write better ad copy for makeup that would appeal to Gen Z, but also determine if that demographic even wants that product. 

“What if [the target demographic] doesn’t want eyeshadow palettes?” Ahuja said. “Maybe blush is a better option to go for if you want to sell a product to this market.”

Mirror Particle’s prediction engine also provides customers with the “why” behind current or future behavior — the motivations, constraints, and additional context that justify its recommendation, helping brands make smarter decisions. 

In one early pilot, a well-known pet food brand wanted to know what imagery to put on the packaging to boost sales. Chicken? Beef? Vegetables? Mirror’s technology found that the brand was asking the wrong question. The imagery didn’t matter. The problem was that the brand was so recognizable that it was considered mass market and cheap, and sales would plateau until it addressed that perception issue.  

“The way we see our model evolving is like how a baby learns about the world,” Ahuja said, noting that babies move from vision to language to body awareness to social intelligence. 

That fundamental interest in modeling the human brain comes from Ahuja’s background studying neuroscience and computer science. Originally from India, she ended up studying at the University of Toronto, where she became inspired by AI pioneer Geoffrey Hinton’s contributions to neural networks. 

After school, Ahuja ended up at Amazon Robotics building robots that build other robots. That’s where she met her co-founders, Will Song and Thomson Yen. Song has spent a chunk of their career building sales personalization engines, and Yen focused on using deep learning to learn about how AI agents understand human behavior.   

The startup’s long-term vision is to be the “general layer for anticipating human behavior” and moving from broader population-level analyses to individual-level insights. 

“We just need a better model of humans if we’re going to work alongside AI and with each other,” Ahuja said.

Check out Mirror Particle and dozens of other innovative startups that have been vetted by TechCrunch’s editorial team next week at Disrupt in downtown San Francisco. The winner of this year’s Startup Battlefield will be decided by our slate of VC judges on the afternoon of Thursday, October 15.

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